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Best Data Science and Machine Learning Platforms

Matthew Miller
MM
Researched and written by Matthew Miller

Data science and machine learning (DSML) platforms provide users with tools to build, deploy, and monitor machine learning algorithms. These software platforms combine intelligent, decision-making algorithms with data, thereby enabling developers to create a business solution. Some data science and machine learning platforms offer prebuilt algorithms and simplistic workflows with features such as drag-and-drop modeling and visual interfaces that easily connect necessary data to the end solution, while others require a greater knowledge of development and coding. These algorithms can include functionality for image recognition, natural language processing, voice recognition, and recommendation systems, in addition to other machine learning capabilities.

The nature of some DSML engineering platforms enables users without intensive data science skills to benefit from the platforms’ features. AI platforms are very similar to platforms as a service (PaaS), which allow for basic application development, but these products differ by offering machine learning options.

To qualify for inclusion in the Data Science and Machine Learning (DSML) Platforms category, a product must:

Present a way for developers to connect data to the algorithms for them to learn and adapt
Allow users to create machine learning algorithms and/or offer prebuilt machine learning algorithms for more novice users
Provide a platform for deploying AI at scale

Best Data Science and Machine Learning Platforms At A Glance

Leader:
Highest Performer:
Easiest to Use:
Best Free Software:
Top Trending:
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Best Free Software:
Top Trending:

G2 takes pride in showing unbiased reviews on user satisfaction in our ratings and reports. We do not allow paid placements in any of our ratings, rankings, or reports. Learn about our scoring methodologies.

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255 Listings in Data Science and Machine Learning Platforms Available
(571)4.3 out of 5
10th Easiest To Use in Data Science and Machine Learning Platforms software
View top Consulting Services for Vertex AI
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Entry Level Price:Pay As You Go
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Build, deploy, and scale machine learning (ML) models faster, with fully managed ML tools for any use case. Through Vertex AI Workbench, Vertex AI is natively integrated with BigQuery, Dataproc, and

    Users
    • Data Scientist
    • Software Engineer
    Industries
    • Computer Software
    • Information Technology and Services
    Market Segment
    • 37% Small-Business
    • 33% Enterprise
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Vertex AI Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    213
    Features
    136
    Model Variety
    134
    Machine Learning
    127
    Integrations
    101
    Cons
    Expensive
    75
    Learning Curve
    56
    Performance Issues
    49
    Complexity Issues
    48
    Complexity
    46
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Vertex AI features and usability ratings that predict user satisfaction
    8.3
    Application
    Average: 8.5
    8.3
    Managed Service
    Average: 8.2
    8.5
    Natural Language Understanding
    Average: 8.4
    8.0
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Google
    Company Website
    Year Founded
    1998
    HQ Location
    Mountain View, CA
    Twitter
    @google
    32,750,646 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    310,061 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Build, deploy, and scale machine learning (ML) models faster, with fully managed ML tools for any use case. Through Vertex AI Workbench, Vertex AI is natively integrated with BigQuery, Dataproc, and

Users
  • Data Scientist
  • Software Engineer
Industries
  • Computer Software
  • Information Technology and Services
Market Segment
  • 37% Small-Business
  • 33% Enterprise
Vertex AI Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
213
Features
136
Model Variety
134
Machine Learning
127
Integrations
101
Cons
Expensive
75
Learning Curve
56
Performance Issues
49
Complexity Issues
48
Complexity
46
Vertex AI features and usability ratings that predict user satisfaction
8.3
Application
Average: 8.5
8.3
Managed Service
Average: 8.2
8.5
Natural Language Understanding
Average: 8.4
8.0
Ease of Admin
Average: 8.4
Seller Details
Seller
Google
Company Website
Year Founded
1998
HQ Location
Mountain View, CA
Twitter
@google
32,750,646 Twitter followers
LinkedIn® Page
www.linkedin.com
310,061 employees on LinkedIn®
(608)4.6 out of 5
Optimized for quick response
4th Easiest To Use in Data Science and Machine Learning Platforms software
View top Consulting Services for Databricks Data Intelligence Platform
Save to My Lists
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Databricks is the Data and AI company. More than 10,000 organizations worldwide — including Block, Comcast, Conde Nast, Rivian, and Shell, and over 60% of the Fortune 500 — rely on the Databricks Data

    Users
    • Data Engineer
    • Data Scientist
    Industries
    • Information Technology and Services
    • Financial Services
    Market Segment
    • 47% Enterprise
    • 37% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Databricks Data Intelligence Platform Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    205
    Features
    203
    Integrations
    138
    Easy Integrations
    116
    Data Management
    114
    Cons
    Learning Curve
    68
    Steep Learning Curve
    66
    Expensive
    59
    Missing Features
    54
    UX Improvement
    45
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Databricks Data Intelligence Platform features and usability ratings that predict user satisfaction
    8.7
    Application
    Average: 8.5
    8.5
    Managed Service
    Average: 8.2
    8.4
    Natural Language Understanding
    Average: 8.4
    8.3
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Company Website
    Year Founded
    1999
    HQ Location
    San Francisco, CA
    Twitter
    @databricks
    79,305 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    10,647 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Databricks is the Data and AI company. More than 10,000 organizations worldwide — including Block, Comcast, Conde Nast, Rivian, and Shell, and over 60% of the Fortune 500 — rely on the Databricks Data

Users
  • Data Engineer
  • Data Scientist
Industries
  • Information Technology and Services
  • Financial Services
Market Segment
  • 47% Enterprise
  • 37% Mid-Market
Databricks Data Intelligence Platform Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
205
Features
203
Integrations
138
Easy Integrations
116
Data Management
114
Cons
Learning Curve
68
Steep Learning Curve
66
Expensive
59
Missing Features
54
UX Improvement
45
Databricks Data Intelligence Platform features and usability ratings that predict user satisfaction
8.7
Application
Average: 8.5
8.5
Managed Service
Average: 8.2
8.4
Natural Language Understanding
Average: 8.4
8.3
Ease of Admin
Average: 8.4
Seller Details
Company Website
Year Founded
1999
HQ Location
San Francisco, CA
Twitter
@databricks
79,305 Twitter followers
LinkedIn® Page
www.linkedin.com
10,647 employees on LinkedIn®

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(316)4.5 out of 5
2nd Easiest To Use in Data Science and Machine Learning Platforms software
Save to My Lists
Entry Level Price:Free
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Deepnote is building the best data science notebook for teams. In the notebook, users can connect their data, explore and analyze it with real-time collaboration and versioning, and easily share and p

    Users
    • Student
    • Data Analyst
    Industries
    • Computer Software
    • Higher Education
    Market Segment
    • 70% Small-Business
    • 23% Mid-Market
    User Sentiment
    How are these determined?Information
    These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
    • Deepnote is a cloud-based tool for conducting analytics, with features such as real-time collaboration, AI-assisted coding, and seamless integration with various data sources.
    • Reviewers frequently mention the ease of use, intuitive interface, and the ability to share insights with team members as standout features of Deepnote.
    • Users reported occasional slow load times, especially when working with large datasets or notebooks, and some found it difficult to use without a technical background.
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Deepnote Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    142
    Collaboration
    107
    Easy Integrations
    66
    Team Collaboration
    66
    Integrations
    55
    Cons
    Slow Performance
    50
    Bugs
    22
    Lagging Performance
    22
    Limited Features
    21
    Slow Loading
    21
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Deepnote features and usability ratings that predict user satisfaction
    8.1
    Application
    Average: 8.5
    8.0
    Managed Service
    Average: 8.2
    7.3
    Natural Language Understanding
    Average: 8.4
    8.8
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Deepnote
    Year Founded
    2019
    HQ Location
    San Francisco , US
    Twitter
    @DeepnoteHQ
    5,164 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    35 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Deepnote is building the best data science notebook for teams. In the notebook, users can connect their data, explore and analyze it with real-time collaboration and versioning, and easily share and p

Users
  • Student
  • Data Analyst
Industries
  • Computer Software
  • Higher Education
Market Segment
  • 70% Small-Business
  • 23% Mid-Market
User Sentiment
How are these determined?Information
These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
  • Deepnote is a cloud-based tool for conducting analytics, with features such as real-time collaboration, AI-assisted coding, and seamless integration with various data sources.
  • Reviewers frequently mention the ease of use, intuitive interface, and the ability to share insights with team members as standout features of Deepnote.
  • Users reported occasional slow load times, especially when working with large datasets or notebooks, and some found it difficult to use without a technical background.
Deepnote Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
142
Collaboration
107
Easy Integrations
66
Team Collaboration
66
Integrations
55
Cons
Slow Performance
50
Bugs
22
Lagging Performance
22
Limited Features
21
Slow Loading
21
Deepnote features and usability ratings that predict user satisfaction
8.1
Application
Average: 8.5
8.0
Managed Service
Average: 8.2
7.3
Natural Language Understanding
Average: 8.4
8.8
Ease of Admin
Average: 8.4
Seller Details
Seller
Deepnote
Year Founded
2019
HQ Location
San Francisco , US
Twitter
@DeepnoteHQ
5,164 Twitter followers
LinkedIn® Page
www.linkedin.com
35 employees on LinkedIn®
(175)4.4 out of 5
6th Easiest To Use in Data Science and Machine Learning Platforms software
View top Consulting Services for Dataiku
Save to My Lists
Entry Level Price:Free
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Dataiku is the Universal AI Platform, giving organizations control over their AI talent, processes, and technologies to unleash the creation of analytics, models, and agents. Aggressively agnostic, it

    Users
    • Data Scientist
    • Data Analyst
    Industries
    • Financial Services
    • Pharmaceuticals
    Market Segment
    • 62% Enterprise
    • 21% Mid-Market
    User Sentiment
    How are these determined?Information
    These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
    • Dataiku is a data science platform that allows both technical and non-technical users to build, deploy, and manage AI projects collaboratively, covering the entire lifecycle of a data project from data ingestion and preparation to model deployment and monitoring.
    • Users like Dataiku's user-friendly interface, its ability to handle big data sets, its seamless integration with various databases, cloud platforms, and machine learning libraries, and its robust model management tools for tracking model performance and ensuring compliance.
    • Users reported issues with Dataiku's learning curve for non-technical stakeholders, its real-time analytics capabilities, performance issues at scale, and inconsistencies in how code is executed in different parts of the platform.
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Dataiku Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Features
    78
    Ease of Use
    75
    Usability
    42
    Productivity Improvement
    41
    Easy Integrations
    39
    Cons
    Learning Curve
    39
    Steep Learning Curve
    24
    Slow Performance
    20
    Difficult Learning
    19
    Complexity Issues
    18
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Dataiku features and usability ratings that predict user satisfaction
    8.3
    Application
    Average: 8.5
    8.2
    Managed Service
    Average: 8.2
    7.8
    Natural Language Understanding
    Average: 8.4
    8.0
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Dataiku
    Company Website
    Year Founded
    2013
    HQ Location
    New York, NY
    Twitter
    @dataiku
    22,955 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    1,438 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Dataiku is the Universal AI Platform, giving organizations control over their AI talent, processes, and technologies to unleash the creation of analytics, models, and agents. Aggressively agnostic, it

Users
  • Data Scientist
  • Data Analyst
Industries
  • Financial Services
  • Pharmaceuticals
Market Segment
  • 62% Enterprise
  • 21% Mid-Market
User Sentiment
How are these determined?Information
These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
  • Dataiku is a data science platform that allows both technical and non-technical users to build, deploy, and manage AI projects collaboratively, covering the entire lifecycle of a data project from data ingestion and preparation to model deployment and monitoring.
  • Users like Dataiku's user-friendly interface, its ability to handle big data sets, its seamless integration with various databases, cloud platforms, and machine learning libraries, and its robust model management tools for tracking model performance and ensuring compliance.
  • Users reported issues with Dataiku's learning curve for non-technical stakeholders, its real-time analytics capabilities, performance issues at scale, and inconsistencies in how code is executed in different parts of the platform.
Dataiku Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Features
78
Ease of Use
75
Usability
42
Productivity Improvement
41
Easy Integrations
39
Cons
Learning Curve
39
Steep Learning Curve
24
Slow Performance
20
Difficult Learning
19
Complexity Issues
18
Dataiku features and usability ratings that predict user satisfaction
8.3
Application
Average: 8.5
8.2
Managed Service
Average: 8.2
7.8
Natural Language Understanding
Average: 8.4
8.0
Ease of Admin
Average: 8.4
Seller Details
Seller
Dataiku
Company Website
Year Founded
2013
HQ Location
New York, NY
Twitter
@dataiku
22,955 Twitter followers
LinkedIn® Page
www.linkedin.com
1,438 employees on LinkedIn®
(308)4.8 out of 5
3rd Easiest To Use in Data Science and Machine Learning Platforms software
Save to My Lists
Entry Level Price:Free
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Saturn Cloud is an AI/ML platform available on every cloud. Data teams and engineers can build, scale, and deploy their AI/ML applications with any stack. Quickly spin up environments to test new idea

    Users
    • Data Scientist
    • Student
    Industries
    • Computer Software
    • Higher Education
    Market Segment
    • 82% Small-Business
    • 12% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Saturn Cloud Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    82
    Setup Ease
    36
    Free Services
    31
    GPU Performance
    28
    User Interface
    23
    Cons
    Limited Hours
    14
    Missing Features
    11
    Expensive
    9
    Limited Free Access
    9
    Slow Performance
    8
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Saturn Cloud features and usability ratings that predict user satisfaction
    9.2
    Application
    Average: 8.5
    9.2
    Managed Service
    Average: 8.2
    9.1
    Natural Language Understanding
    Average: 8.4
    9.2
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Company Website
    Year Founded
    2018
    HQ Location
    New York, US
    Twitter
    @saturn_cloud
    3,282 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    38 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Saturn Cloud is an AI/ML platform available on every cloud. Data teams and engineers can build, scale, and deploy their AI/ML applications with any stack. Quickly spin up environments to test new idea

Users
  • Data Scientist
  • Student
Industries
  • Computer Software
  • Higher Education
Market Segment
  • 82% Small-Business
  • 12% Mid-Market
Saturn Cloud Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
82
Setup Ease
36
Free Services
31
GPU Performance
28
User Interface
23
Cons
Limited Hours
14
Missing Features
11
Expensive
9
Limited Free Access
9
Slow Performance
8
Saturn Cloud features and usability ratings that predict user satisfaction
9.2
Application
Average: 8.5
9.2
Managed Service
Average: 8.2
9.1
Natural Language Understanding
Average: 8.4
9.2
Ease of Admin
Average: 8.4
Seller Details
Company Website
Year Founded
2018
HQ Location
New York, US
Twitter
@saturn_cloud
3,282 Twitter followers
LinkedIn® Page
www.linkedin.com
38 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Users
    No information available
    Industries
    • Computer Software
    • Information Technology and Services
    Market Segment
    • 53% Small-Business
    • 29% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Deep Learning VM Image Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    26
    Features
    14
    Setup Ease
    14
    Cloud Computing
    10
    Easy Setup
    10
    Cons
    Expensive
    14
    Cost
    7
    Learning Difficulty
    7
    Difficult Learning
    6
    Lagging Performance
    5
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Deep Learning VM Image features and usability ratings that predict user satisfaction
    8.9
    Application
    Average: 8.5
    8.6
    Managed Service
    Average: 8.2
    8.5
    Natural Language Understanding
    Average: 8.4
    8.8
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Google
    Year Founded
    1998
    HQ Location
    Mountain View, CA
    Twitter
    @google
    32,750,646 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    310,061 employees on LinkedIn®
    Ownership
    NASDAQ:GOOG
Users
No information available
Industries
  • Computer Software
  • Information Technology and Services
Market Segment
  • 53% Small-Business
  • 29% Mid-Market
Deep Learning VM Image Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
26
Features
14
Setup Ease
14
Cloud Computing
10
Easy Setup
10
Cons
Expensive
14
Cost
7
Learning Difficulty
7
Difficult Learning
6
Lagging Performance
5
Deep Learning VM Image features and usability ratings that predict user satisfaction
8.9
Application
Average: 8.5
8.6
Managed Service
Average: 8.2
8.5
Natural Language Understanding
Average: 8.4
8.8
Ease of Admin
Average: 8.4
Seller Details
Seller
Google
Year Founded
1998
HQ Location
Mountain View, CA
Twitter
@google
32,750,646 Twitter followers
LinkedIn® Page
www.linkedin.com
310,061 employees on LinkedIn®
Ownership
NASDAQ:GOOG
(637)4.6 out of 5
Optimized for quick response
1st Easiest To Use in Data Science and Machine Learning Platforms software
View top Consulting Services for Alteryx
Save to My Lists
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    The Alteryx AI Platform for Enterprise Analytics offers integrated generative and conversational AI, data preparation, advanced analytics, and automated reporting capabilities. The platform is powered

    Users
    • Data Analyst
    • Consultant
    Industries
    • Financial Services
    • Accounting
    Market Segment
    • 64% Enterprise
    • 22% Mid-Market
    User Sentiment
    How are these determined?Information
    These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
    • Alteryx is an analysis tool that is used to explore and manipulate data, connect to various databases, and automate workflows.
    • Users frequently mention the tool's user-friendly interface, its ability to connect to different databases and cloud systems, and its data blending capability from multiple sources.
    • Users reported that the tool is costly for small enterprises, has limited visualization features, and sometimes causes workflow slowdown when handling large real-time transactions.
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Alteryx Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    142
    Automation
    55
    Intuitive
    51
    Easy Learning
    44
    Ease of Learning
    42
    Cons
    Learning Curve
    40
    Expensive
    33
    Learning Difficulty
    26
    Complexity
    18
    Missing Features
    17
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Alteryx features and usability ratings that predict user satisfaction
    8.8
    Application
    Average: 8.5
    8.0
    Managed Service
    Average: 8.2
    8.0
    Natural Language Understanding
    Average: 8.4
    8.4
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Alteryx
    Company Website
    Year Founded
    1997
    HQ Location
    Irvine, CA
    Twitter
    @alteryx
    26,492 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    2,323 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

The Alteryx AI Platform for Enterprise Analytics offers integrated generative and conversational AI, data preparation, advanced analytics, and automated reporting capabilities. The platform is powered

Users
  • Data Analyst
  • Consultant
Industries
  • Financial Services
  • Accounting
Market Segment
  • 64% Enterprise
  • 22% Mid-Market
User Sentiment
How are these determined?Information
These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
  • Alteryx is an analysis tool that is used to explore and manipulate data, connect to various databases, and automate workflows.
  • Users frequently mention the tool's user-friendly interface, its ability to connect to different databases and cloud systems, and its data blending capability from multiple sources.
  • Users reported that the tool is costly for small enterprises, has limited visualization features, and sometimes causes workflow slowdown when handling large real-time transactions.
Alteryx Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
142
Automation
55
Intuitive
51
Easy Learning
44
Ease of Learning
42
Cons
Learning Curve
40
Expensive
33
Learning Difficulty
26
Complexity
18
Missing Features
17
Alteryx features and usability ratings that predict user satisfaction
8.8
Application
Average: 8.5
8.0
Managed Service
Average: 8.2
8.0
Natural Language Understanding
Average: 8.4
8.4
Ease of Admin
Average: 8.4
Seller Details
Seller
Alteryx
Company Website
Year Founded
1997
HQ Location
Irvine, CA
Twitter
@alteryx
26,492 Twitter followers
LinkedIn® Page
www.linkedin.com
2,323 employees on LinkedIn®
(126)4.5 out of 5
7th Easiest To Use in Data Science and Machine Learning Platforms software
View top Consulting Services for TensorFlow
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  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    TensorFlow is an open source software library for numerical computation using data flow graphs.

    Users
    • Software Engineer
    • Senior Software Engineer
    Industries
    • Computer Software
    • Information Technology and Services
    Market Segment
    • 49% Small-Business
    • 27% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • TensorFlow Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Machine Learning
    22
    AI Integration
    19
    Model Variety
    17
    Ease of Use
    14
    Easy Integrations
    12
    Cons
    Steep Learning Curve
    24
    Complexity
    7
    Difficult Learning
    7
    Error Handling
    6
    Slow Performance
    6
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • TensorFlow features and usability ratings that predict user satisfaction
    8.7
    Application
    Average: 8.5
    8.5
    Managed Service
    Average: 8.2
    8.7
    Natural Language Understanding
    Average: 8.4
    7.8
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Year Founded
    2016
    HQ Location
    Centre Urbain Nord, TN
    Twitter
    @TensorFlow
    384,520 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    1 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

TensorFlow is an open source software library for numerical computation using data flow graphs.

Users
  • Software Engineer
  • Senior Software Engineer
Industries
  • Computer Software
  • Information Technology and Services
Market Segment
  • 49% Small-Business
  • 27% Mid-Market
TensorFlow Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Machine Learning
22
AI Integration
19
Model Variety
17
Ease of Use
14
Easy Integrations
12
Cons
Steep Learning Curve
24
Complexity
7
Difficult Learning
7
Error Handling
6
Slow Performance
6
TensorFlow features and usability ratings that predict user satisfaction
8.7
Application
Average: 8.5
8.5
Managed Service
Average: 8.2
8.7
Natural Language Understanding
Average: 8.4
7.8
Ease of Admin
Average: 8.4
Seller Details
Year Founded
2016
HQ Location
Centre Urbain Nord, TN
Twitter
@TensorFlow
384,520 Twitter followers
LinkedIn® Page
www.linkedin.com
1 employees on LinkedIn®
(624)4.6 out of 5
Optimized for quick response
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Entry Level Price:$2 Compute/Hour
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Snowflake makes enterprise AI easy, efficient and trusted. Thousands of companies around the globe, including hundreds of the world’s largest, use Snowflake’s AI Data Cloud to share data, build applic

    Users
    • Data Engineer
    • Data Analyst
    Industries
    • Information Technology and Services
    • Computer Software
    Market Segment
    • 46% Enterprise
    • 42% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Snowflake Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    85
    Features
    53
    Scalability
    46
    Data Management
    42
    Integrations
    41
    Cons
    Expensive
    42
    Feature Limitations
    21
    Cost Management
    20
    Cost
    19
    Poor UI Design
    18
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Snowflake features and usability ratings that predict user satisfaction
    9.1
    Application
    Average: 8.5
    8.9
    Managed Service
    Average: 8.2
    8.6
    Natural Language Understanding
    Average: 8.4
    8.6
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Company Website
    Year Founded
    2012
    HQ Location
    San Mateo, CA
    Twitter
    @SnowflakeDB
    65 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    9,352 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Snowflake makes enterprise AI easy, efficient and trusted. Thousands of companies around the globe, including hundreds of the world’s largest, use Snowflake’s AI Data Cloud to share data, build applic

Users
  • Data Engineer
  • Data Analyst
Industries
  • Information Technology and Services
  • Computer Software
Market Segment
  • 46% Enterprise
  • 42% Mid-Market
Snowflake Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
85
Features
53
Scalability
46
Data Management
42
Integrations
41
Cons
Expensive
42
Feature Limitations
21
Cost Management
20
Cost
19
Poor UI Design
18
Snowflake features and usability ratings that predict user satisfaction
9.1
Application
Average: 8.5
8.9
Managed Service
Average: 8.2
8.6
Natural Language Understanding
Average: 8.4
8.6
Ease of Admin
Average: 8.4
Seller Details
Company Website
Year Founded
2012
HQ Location
San Mateo, CA
Twitter
@SnowflakeDB
65 Twitter followers
LinkedIn® Page
www.linkedin.com
9,352 employees on LinkedIn®
(232)4.5 out of 5
5th Easiest To Use in Data Science and Machine Learning Platforms software
View top Consulting Services for Hex
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Entry Level Price:Free
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Hex is a platform for collaborative analytics and data science. It combines code notebooks, data apps, and knowledge management, making it easy to use data and share the results. Hex brings togethe

    Users
    • Data Scientist
    • Senior Data Analyst
    Industries
    • Computer Software
    • Information Technology and Services
    Market Segment
    • 59% Mid-Market
    • 28% Small-Business
    User Sentiment
    How are these determined?Information
    These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
    • Hex is a data analysis and visualization tool that allows users to combine SQL, Python, and other coding languages in one space, offering features like drag and drop, data blending, and the ability to name the output of a SQL box into a dataframe.
    • Reviewers appreciate Hex's ease of use, its ability to facilitate collaboration, its seamless integration with various data sources, and its powerful visualization capabilities, including the 'add cells with Magic' function that generates highly accurate queries.
    • Users experienced issues with Hex's handling of large datasets, its limited customization capabilities in charts, its lack of flexibility with app features, and occasional difficulties with its drag and drop function and exiting cells.
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Hex Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    120
    SQL Queries
    77
    SQL Querying
    69
    Data Management
    61
    Python Support
    60
    Cons
    Lacking Features
    38
    Missing Features
    38
    Limited Visualization
    31
    Limited Features
    29
    Poor Visualization
    29
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Hex features and usability ratings that predict user satisfaction
    6.9
    Application
    Average: 8.5
    6.8
    Managed Service
    Average: 8.2
    5.2
    Natural Language Understanding
    Average: 8.4
    8.9
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Hex Tech
    Company Website
    Year Founded
    2019
    HQ Location
    San Francisco, US
    Twitter
    @_hex_tech
    6,009 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    167 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Hex is a platform for collaborative analytics and data science. It combines code notebooks, data apps, and knowledge management, making it easy to use data and share the results. Hex brings togethe

Users
  • Data Scientist
  • Senior Data Analyst
Industries
  • Computer Software
  • Information Technology and Services
Market Segment
  • 59% Mid-Market
  • 28% Small-Business
User Sentiment
How are these determined?Information
These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
  • Hex is a data analysis and visualization tool that allows users to combine SQL, Python, and other coding languages in one space, offering features like drag and drop, data blending, and the ability to name the output of a SQL box into a dataframe.
  • Reviewers appreciate Hex's ease of use, its ability to facilitate collaboration, its seamless integration with various data sources, and its powerful visualization capabilities, including the 'add cells with Magic' function that generates highly accurate queries.
  • Users experienced issues with Hex's handling of large datasets, its limited customization capabilities in charts, its lack of flexibility with app features, and occasional difficulties with its drag and drop function and exiting cells.
Hex Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
120
SQL Queries
77
SQL Querying
69
Data Management
61
Python Support
60
Cons
Lacking Features
38
Missing Features
38
Limited Visualization
31
Limited Features
29
Poor Visualization
29
Hex features and usability ratings that predict user satisfaction
6.9
Application
Average: 8.5
6.8
Managed Service
Average: 8.2
5.2
Natural Language Understanding
Average: 8.4
8.9
Ease of Admin
Average: 8.4
Seller Details
Seller
Hex Tech
Company Website
Year Founded
2019
HQ Location
San Francisco, US
Twitter
@_hex_tech
6,009 Twitter followers
LinkedIn® Page
www.linkedin.com
167 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    MATLAB is a programming, modeling and simulation tool developed by MathWorks.

    Users
    • Graduate Research Assistant
    • Student
    Industries
    • Higher Education
    • Research
    Market Segment
    • 43% Enterprise
    • 30% Small-Business
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • MATLAB Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    10
    Usability
    6
    Features
    5
    Easy Integrations
    4
    Integrations
    4
    Cons
    Expensive
    4
    Difficult Learning
    2
    Heavy Workload Management
    2
    High System Requirements
    2
    Lacking Features
    2
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • MATLAB features and usability ratings that predict user satisfaction
    8.6
    Application
    Average: 8.5
    8.3
    Managed Service
    Average: 8.2
    8.5
    Natural Language Understanding
    Average: 8.4
    8.4
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    MathWorks
    Year Founded
    1984
    HQ Location
    Natick, MA
    Twitter
    @MATLAB
    100,116 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    7,666 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

MATLAB is a programming, modeling and simulation tool developed by MathWorks.

Users
  • Graduate Research Assistant
  • Student
Industries
  • Higher Education
  • Research
Market Segment
  • 43% Enterprise
  • 30% Small-Business
MATLAB Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
10
Usability
6
Features
5
Easy Integrations
4
Integrations
4
Cons
Expensive
4
Difficult Learning
2
Heavy Workload Management
2
High System Requirements
2
Lacking Features
2
MATLAB features and usability ratings that predict user satisfaction
8.6
Application
Average: 8.5
8.3
Managed Service
Average: 8.2
8.5
Natural Language Understanding
Average: 8.4
8.4
Ease of Admin
Average: 8.4
Seller Details
Seller
MathWorks
Year Founded
1984
HQ Location
Natick, MA
Twitter
@MATLAB
100,116 Twitter followers
LinkedIn® Page
www.linkedin.com
7,666 employees on LinkedIn®
(481)4.3 out of 5
15th Easiest To Use in Data Science and Machine Learning Platforms software
Save to My Lists
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Organizations face increasing demands for high-powered analytics that produce fast, trustworthy results. Whether it’s providing teams of data scientists with advanced machine learning capabilities or

    Users
    • Statistical Programmer
    • Data Analyst
    Industries
    • Pharmaceuticals
    • Banking
    Market Segment
    • 35% Enterprise
    • 32% Small-Business
    User Sentiment
    How are these determined?Information
    These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
    • SAS Viya is a data analytics platform that allows users to develop, visualize, and model data in a single, intuitive platform.
    • Reviewers appreciate the software's flexibility, its ability to handle large data sets, its integration with open-source technologies, and its user-friendly interface that requires little to no coding.
    • Reviewers noted that the platform can be complex for new users, its data preparation features are limited, the pricing can be vague, and the process to upload and read-in data could be easier.
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • SAS Viya Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    185
    Features
    132
    Analytics
    110
    Data Analysis
    85
    Performance Efficiency
    83
    Cons
    Learning Curve
    86
    Learning Difficulty
    83
    Complexity
    79
    Expensive
    64
    Difficult Learning
    63
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • SAS Viya features and usability ratings that predict user satisfaction
    7.6
    Application
    Average: 8.5
    7.8
    Managed Service
    Average: 8.2
    7.5
    Natural Language Understanding
    Average: 8.4
    7.3
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Company Website
    Year Founded
    1976
    HQ Location
    Cary, NC
    Twitter
    @SASsoftware
    61,921 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    17,528 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Organizations face increasing demands for high-powered analytics that produce fast, trustworthy results. Whether it’s providing teams of data scientists with advanced machine learning capabilities or

Users
  • Statistical Programmer
  • Data Analyst
Industries
  • Pharmaceuticals
  • Banking
Market Segment
  • 35% Enterprise
  • 32% Small-Business
User Sentiment
How are these determined?Information
These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
  • SAS Viya is a data analytics platform that allows users to develop, visualize, and model data in a single, intuitive platform.
  • Reviewers appreciate the software's flexibility, its ability to handle large data sets, its integration with open-source technologies, and its user-friendly interface that requires little to no coding.
  • Reviewers noted that the platform can be complex for new users, its data preparation features are limited, the pricing can be vague, and the process to upload and read-in data could be easier.
SAS Viya Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
185
Features
132
Analytics
110
Data Analysis
85
Performance Efficiency
83
Cons
Learning Curve
86
Learning Difficulty
83
Complexity
79
Expensive
64
Difficult Learning
63
SAS Viya features and usability ratings that predict user satisfaction
7.6
Application
Average: 8.5
7.8
Managed Service
Average: 8.2
7.5
Natural Language Understanding
Average: 8.4
7.3
Ease of Admin
Average: 8.4
Seller Details
Company Website
Year Founded
1976
HQ Location
Cary, NC
Twitter
@SASsoftware
61,921 Twitter followers
LinkedIn® Page
www.linkedin.com
17,528 employees on LinkedIn®
(79)4.5 out of 5
Optimized for quick response
16th Easiest To Use in Data Science and Machine Learning Platforms software
Save to My Lists
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Watsonx.ai is part of the IBM watsonx platform that brings together new generative AI capabilities, powered by foundation models and traditional machine learning into a powerful studio spanning the AI

    Users
    • Consultant
    Industries
    • Information Technology and Services
    • Computer Software
    Market Segment
    • 35% Small-Business
    • 34% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • IBM watsonx.ai Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    50
    Model Variety
    20
    Intuitive
    17
    Features
    16
    User Interface
    16
    Cons
    Improvement Needed
    17
    Expensive
    12
    UX Improvement
    12
    Difficult Learning
    10
    Complexity
    9
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • IBM watsonx.ai features and usability ratings that predict user satisfaction
    8.8
    Application
    Average: 8.5
    8.5
    Managed Service
    Average: 8.2
    8.4
    Natural Language Understanding
    Average: 8.4
    8.6
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    IBM
    Company Website
    Year Founded
    1911
    HQ Location
    Armonk, NY
    Twitter
    @IBM
    709,764 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    331,391 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Watsonx.ai is part of the IBM watsonx platform that brings together new generative AI capabilities, powered by foundation models and traditional machine learning into a powerful studio spanning the AI

Users
  • Consultant
Industries
  • Information Technology and Services
  • Computer Software
Market Segment
  • 35% Small-Business
  • 34% Mid-Market
IBM watsonx.ai Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
50
Model Variety
20
Intuitive
17
Features
16
User Interface
16
Cons
Improvement Needed
17
Expensive
12
UX Improvement
12
Difficult Learning
10
Complexity
9
IBM watsonx.ai features and usability ratings that predict user satisfaction
8.8
Application
Average: 8.5
8.5
Managed Service
Average: 8.2
8.4
Natural Language Understanding
Average: 8.4
8.6
Ease of Admin
Average: 8.4
Seller Details
Seller
IBM
Company Website
Year Founded
1911
HQ Location
Armonk, NY
Twitter
@IBM
709,764 Twitter followers
LinkedIn® Page
www.linkedin.com
331,391 employees on LinkedIn®
(145)4.6 out of 5
Optimized for quick response
Save to My Lists
Entry Level Price:Free
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Anaconda is built to advance AI with open source at scale, giving builders and organizations the confidence to increase productivity, and save time, spend and risk associated with open source. 95% of

    Users
    • Software Engineer
    Industries
    • Information Technology and Services
    • Computer Software
    Market Segment
    • 38% Small-Business
    • 37% Enterprise
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Anaconda AI Platform Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Tools Variety
    7
    Ease of Use
    6
    Coding Ease
    4
    Easy Integrations
    2
    Model Variety
    2
    Cons
    Data Management Issues
    2
    Slow Performance
    2
    Slow Startup
    2
    Deployment Issues
    1
    Expensive
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Anaconda AI Platform features and usability ratings that predict user satisfaction
    8.9
    Application
    Average: 8.5
    8.6
    Managed Service
    Average: 8.2
    8.8
    Natural Language Understanding
    Average: 8.4
    9.0
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Company Website
    Year Founded
    2012
    HQ Location
    Austin, Texas
    Twitter
    @anacondainc
    84,451 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    518 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Anaconda is built to advance AI with open source at scale, giving builders and organizations the confidence to increase productivity, and save time, spend and risk associated with open source. 95% of

Users
  • Software Engineer
Industries
  • Information Technology and Services
  • Computer Software
Market Segment
  • 38% Small-Business
  • 37% Enterprise
Anaconda AI Platform Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Tools Variety
7
Ease of Use
6
Coding Ease
4
Easy Integrations
2
Model Variety
2
Cons
Data Management Issues
2
Slow Performance
2
Slow Startup
2
Deployment Issues
1
Expensive
1
Anaconda AI Platform features and usability ratings that predict user satisfaction
8.9
Application
Average: 8.5
8.6
Managed Service
Average: 8.2
8.8
Natural Language Understanding
Average: 8.4
9.0
Ease of Admin
Average: 8.4
Seller Details
Company Website
Year Founded
2012
HQ Location
Austin, Texas
Twitter
@anacondainc
84,451 Twitter followers
LinkedIn® Page
www.linkedin.com
518 employees on LinkedIn®
(42)4.3 out of 5
12th Easiest To Use in Data Science and Machine Learning Platforms software
View top Consulting Services for Amazon SageMaker
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  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Amazon SageMaker is a fully-managed service that enables developers and data scientists to quickly and easily build, train, and deploy machine learning models at any scale. Amazon SageMaker removes al

    Users
    No information available
    Industries
    • Computer Software
    • Information Technology and Services
    Market Segment
    • 33% Mid-Market
    • 33% Small-Business
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Amazon SageMaker Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Easy Integrations
    3
    Features
    3
    Integrations
    3
    AI Integration
    2
    Integrated Platform
    2
    Cons
    Expensive
    3
    Complex Interface
    1
    Complexity
    1
    Complexity Issues
    1
    Cost
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Amazon SageMaker features and usability ratings that predict user satisfaction
    8.4
    Application
    Average: 8.5
    9.1
    Managed Service
    Average: 8.2
    9.1
    Natural Language Understanding
    Average: 8.4
    8.4
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Year Founded
    2006
    HQ Location
    Seattle, WA
    Twitter
    @awscloud
    2,229,471 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    143,150 employees on LinkedIn®
    Ownership
    NASDAQ: AMZN
Product Description
How are these determined?Information
This description is provided by the seller.

Amazon SageMaker is a fully-managed service that enables developers and data scientists to quickly and easily build, train, and deploy machine learning models at any scale. Amazon SageMaker removes al

Users
No information available
Industries
  • Computer Software
  • Information Technology and Services
Market Segment
  • 33% Mid-Market
  • 33% Small-Business
Amazon SageMaker Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Easy Integrations
3
Features
3
Integrations
3
AI Integration
2
Integrated Platform
2
Cons
Expensive
3
Complex Interface
1
Complexity
1
Complexity Issues
1
Cost
1
Amazon SageMaker features and usability ratings that predict user satisfaction
8.4
Application
Average: 8.5
9.1
Managed Service
Average: 8.2
9.1
Natural Language Understanding
Average: 8.4
8.4
Ease of Admin
Average: 8.4
Seller Details
Year Founded
2006
HQ Location
Seattle, WA
Twitter
@awscloud
2,229,471 Twitter followers
LinkedIn® Page
www.linkedin.com
143,150 employees on LinkedIn®
Ownership
NASDAQ: AMZN
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Cloudera Data Science provides better access to Apache Hadoop data with familiar and performant tools that address all aspects of modern predictive analytics.

    Users
    No information available
    Industries
    • Information Technology and Services
    • Computer Software
    Market Segment
    • 36% Mid-Market
    • 36% Enterprise
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Cloudera Data Engineering features and usability ratings that predict user satisfaction
    9.4
    Application
    Average: 8.5
    9.1
    Managed Service
    Average: 8.2
    9.5
    Natural Language Understanding
    Average: 8.4
    9.4
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Cloudera
    Year Founded
    2008
    HQ Location
    Palo Alto, CA
    Twitter
    @cloudera
    107,764 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    3,262 employees on LinkedIn®
    Phone
    888-789-1488
Product Description
How are these determined?Information
This description is provided by the seller.

Cloudera Data Science provides better access to Apache Hadoop data with familiar and performant tools that address all aspects of modern predictive analytics.

Users
No information available
Industries
  • Information Technology and Services
  • Computer Software
Market Segment
  • 36% Mid-Market
  • 36% Enterprise
Cloudera Data Engineering features and usability ratings that predict user satisfaction
9.4
Application
Average: 8.5
9.1
Managed Service
Average: 8.2
9.5
Natural Language Understanding
Average: 8.4
9.4
Ease of Admin
Average: 8.4
Seller Details
Seller
Cloudera
Year Founded
2008
HQ Location
Palo Alto, CA
Twitter
@cloudera
107,764 Twitter followers
LinkedIn® Page
www.linkedin.com
3,262 employees on LinkedIn®
Phone
888-789-1488
(88)4.3 out of 5
11th Easiest To Use in Data Science and Machine Learning Platforms software
Save to My Lists
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Azure Machine Learning Studio is a GUI-based integrated development environment for constructing and operationalizing Machine Learning workflow on Azure.

    Users
    • Software Engineer
    Industries
    • Information Technology and Services
    • Computer Software
    Market Segment
    • 39% Enterprise
    • 34% Small-Business
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Azure Machine Learning Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    11
    Features
    7
    Efficiency
    6
    Machine Learning
    6
    Easy Integrations
    5
    Cons
    Expensive
    5
    Learning Curve
    4
    Integration Issues
    3
    UX Improvement
    3
    Cost
    2
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Azure Machine Learning features and usability ratings that predict user satisfaction
    8.8
    Application
    Average: 8.5
    8.9
    Managed Service
    Average: 8.2
    8.7
    Natural Language Understanding
    Average: 8.4
    8.3
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Microsoft
    Year Founded
    1975
    HQ Location
    Redmond, Washington
    Twitter
    @microsoft
    14,002,464 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    237,523 employees on LinkedIn®
    Ownership
    MSFT
Product Description
How are these determined?Information
This description is provided by the seller.

Azure Machine Learning Studio is a GUI-based integrated development environment for constructing and operationalizing Machine Learning workflow on Azure.

Users
  • Software Engineer
Industries
  • Information Technology and Services
  • Computer Software
Market Segment
  • 39% Enterprise
  • 34% Small-Business
Azure Machine Learning Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
11
Features
7
Efficiency
6
Machine Learning
6
Easy Integrations
5
Cons
Expensive
5
Learning Curve
4
Integration Issues
3
UX Improvement
3
Cost
2
Azure Machine Learning features and usability ratings that predict user satisfaction
8.8
Application
Average: 8.5
8.9
Managed Service
Average: 8.2
8.7
Natural Language Understanding
Average: 8.4
8.3
Ease of Admin
Average: 8.4
Seller Details
Seller
Microsoft
Year Founded
1975
HQ Location
Redmond, Washington
Twitter
@microsoft
14,002,464 Twitter followers
LinkedIn® Page
www.linkedin.com
237,523 employees on LinkedIn®
Ownership
MSFT
Entry Level Price:Free
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    KNIME helps everybody make sense of data. Its free and open source KNIME Analytics Platform enables anyone — whether they come from a business, technical or data background — to intuitively work wi

    Users
    No information available
    Industries
    • Information Technology and Services
    • Higher Education
    Market Segment
    • 49% Enterprise
    • 36% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • KNIME Software Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    4
    Coding Ease
    2
    Collaboration
    2
    Features
    2
    Intuitive
    2
    Cons
    Memory Usage
    2
    Data Management Issues
    1
    Difficulty
    1
    Limited Storage
    1
    Missing Features
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • KNIME Software features and usability ratings that predict user satisfaction
    9.2
    Application
    Average: 8.5
    8.3
    Managed Service
    Average: 8.2
    8.6
    Natural Language Understanding
    Average: 8.4
    7.9
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    KNIME
    Year Founded
    2008
    HQ Location
    Zurich, Switzerland
    Twitter
    @knime
    8,025 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    246 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

KNIME helps everybody make sense of data. Its free and open source KNIME Analytics Platform enables anyone — whether they come from a business, technical or data background — to intuitively work wi

Users
No information available
Industries
  • Information Technology and Services
  • Higher Education
Market Segment
  • 49% Enterprise
  • 36% Mid-Market
KNIME Software Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
4
Coding Ease
2
Collaboration
2
Features
2
Intuitive
2
Cons
Memory Usage
2
Data Management Issues
1
Difficulty
1
Limited Storage
1
Missing Features
1
KNIME Software features and usability ratings that predict user satisfaction
9.2
Application
Average: 8.5
8.3
Managed Service
Average: 8.2
8.6
Natural Language Understanding
Average: 8.4
7.9
Ease of Admin
Average: 8.4
Seller Details
Seller
KNIME
Year Founded
2008
HQ Location
Zurich, Switzerland
Twitter
@knime
8,025 Twitter followers
LinkedIn® Page
www.linkedin.com
246 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Infosys Nia is a knowledge-based AI platform that brings machine learning together with the deep knowledge of an organization to drive automation and innovation and enables businesses to continuously

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 50% Enterprise
    • 25% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Infosys Nia Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Easy Integrations
    3
    User Interface
    3
    AI Integration
    2
    Automation
    2
    Flexibility
    2
    Cons
    Complexity
    3
    Steep Learning Curve
    2
    Complex Interface
    1
    Cost
    1
    Difficult Setup
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Infosys Nia features and usability ratings that predict user satisfaction
    8.0
    Application
    Average: 8.5
    8.7
    Managed Service
    Average: 8.2
    9.0
    Natural Language Understanding
    Average: 8.4
    7.5
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Infosys
    Year Founded
    1981
    HQ Location
    Bangalore, Karnataka
    Twitter
    @Infosys
    523,743 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    344,702 employees on LinkedIn®
    Ownership
    NSE
Product Description
How are these determined?Information
This description is provided by the seller.

Infosys Nia is a knowledge-based AI platform that brings machine learning together with the deep knowledge of an organization to drive automation and innovation and enables businesses to continuously

Users
No information available
Industries
No information available
Market Segment
  • 50% Enterprise
  • 25% Mid-Market
Infosys Nia Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Easy Integrations
3
User Interface
3
AI Integration
2
Automation
2
Flexibility
2
Cons
Complexity
3
Steep Learning Curve
2
Complex Interface
1
Cost
1
Difficult Setup
1
Infosys Nia features and usability ratings that predict user satisfaction
8.0
Application
Average: 8.5
8.7
Managed Service
Average: 8.2
9.0
Natural Language Understanding
Average: 8.4
7.5
Ease of Admin
Average: 8.4
Seller Details
Seller
Infosys
Year Founded
1981
HQ Location
Bangalore, Karnataka
Twitter
@Infosys
523,743 Twitter followers
LinkedIn® Page
www.linkedin.com
344,702 employees on LinkedIn®
Ownership
NSE
(30)4.9 out of 5
Optimized for quick response
9th Easiest To Use in Data Science and Machine Learning Platforms software
Save to My Lists
Entry Level Price:Contact Us
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    RapidCanvas is the trusted partner for transforming your business with AI. Our hybrid approach combines autonomous AI agents with human expertise to make enterprise-grade AI accessible to all organiza

    Users
    No information available
    Industries
    • Computer Software
    Market Segment
    • 47% Small-Business
    • 37% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • RapidCanvas Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    9
    Easy Integrations
    6
    Customer Support
    5
    Collaboration
    4
    AI Integration
    3
    Cons
    Filtering Issues
    1
    Limited Customization
    1
    Slow Loading
    1
    Slow Performance
    1
    Steep Learning Curve
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • RapidCanvas features and usability ratings that predict user satisfaction
    9.5
    Application
    Average: 8.5
    9.2
    Managed Service
    Average: 8.2
    8.3
    Natural Language Understanding
    Average: 8.4
    9.3
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Company Website
    Year Founded
    2021
    HQ Location
    Austin, Texas
    Twitter
    @rapidcanvas
    72 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    60 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

RapidCanvas is the trusted partner for transforming your business with AI. Our hybrid approach combines autonomous AI agents with human expertise to make enterprise-grade AI accessible to all organiza

Users
No information available
Industries
  • Computer Software
Market Segment
  • 47% Small-Business
  • 37% Mid-Market
RapidCanvas Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
9
Easy Integrations
6
Customer Support
5
Collaboration
4
AI Integration
3
Cons
Filtering Issues
1
Limited Customization
1
Slow Loading
1
Slow Performance
1
Steep Learning Curve
1
RapidCanvas features and usability ratings that predict user satisfaction
9.5
Application
Average: 8.5
9.2
Managed Service
Average: 8.2
8.3
Natural Language Understanding
Average: 8.4
9.3
Ease of Admin
Average: 8.4
Seller Details
Company Website
Year Founded
2021
HQ Location
Austin, Texas
Twitter
@rapidcanvas
72 Twitter followers
LinkedIn® Page
www.linkedin.com
60 employees on LinkedIn®
(861)4.3 out of 5
Optimized for quick response
13th Easiest To Use in Data Science and Machine Learning Platforms software
View top Consulting Services for Domo
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  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Domo's AI and Data Products Platform empowers organizations to turn data into actionable insights and solutions. It allows users to seamlessly connect diverse data sources, prepare data for use, and g

    Users
    • Data Analyst
    • Business Analyst
    Industries
    • Computer Software
    • Marketing and Advertising
    Market Segment
    • 50% Mid-Market
    • 29% Enterprise
    User Sentiment
    How are these determined?Information
    These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
    • Domo is a data visualization and business intelligence tool that allows users to connect, transform, visualize, and share data across various platforms.
    • Reviewers like Domo's user-friendly interface, its ability to handle large amounts of data from multiple sources, and its robust features such as automated reporting, real-time data processing, and customizable dashboards.
    • Reviewers noted some limitations in Domo's visualization options, occasional slow performance with large data sets, difficulties in finding specific features or information, and concerns about the cost structure and pricing model.
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Domo Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    146
    Data Visualization
    75
    Easy Integrations
    65
    Integrations
    58
    Insights
    55
    Cons
    Learning Curve
    50
    Missing Features
    36
    Data Management Issues
    34
    Expensive
    28
    Limited Customization
    24
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Domo features and usability ratings that predict user satisfaction
    5.9
    Application
    Average: 8.5
    6.4
    Managed Service
    Average: 8.2
    5.8
    Natural Language Understanding
    Average: 8.4
    8.0
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Domo
    Company Website
    Year Founded
    2010
    HQ Location
    American Fork, UT
    Twitter
    @Domotalk
    65,275 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    1,247 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Domo's AI and Data Products Platform empowers organizations to turn data into actionable insights and solutions. It allows users to seamlessly connect diverse data sources, prepare data for use, and g

Users
  • Data Analyst
  • Business Analyst
Industries
  • Computer Software
  • Marketing and Advertising
Market Segment
  • 50% Mid-Market
  • 29% Enterprise
User Sentiment
How are these determined?Information
These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
  • Domo is a data visualization and business intelligence tool that allows users to connect, transform, visualize, and share data across various platforms.
  • Reviewers like Domo's user-friendly interface, its ability to handle large amounts of data from multiple sources, and its robust features such as automated reporting, real-time data processing, and customizable dashboards.
  • Reviewers noted some limitations in Domo's visualization options, occasional slow performance with large data sets, difficulties in finding specific features or information, and concerns about the cost structure and pricing model.
Domo Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
146
Data Visualization
75
Easy Integrations
65
Integrations
58
Insights
55
Cons
Learning Curve
50
Missing Features
36
Data Management Issues
34
Expensive
28
Limited Customization
24
Domo features and usability ratings that predict user satisfaction
5.9
Application
Average: 8.5
6.4
Managed Service
Average: 8.2
5.8
Natural Language Understanding
Average: 8.4
8.0
Ease of Admin
Average: 8.4
Seller Details
Seller
Domo
Company Website
Year Founded
2010
HQ Location
American Fork, UT
Twitter
@Domotalk
65,275 Twitter followers
LinkedIn® Page
www.linkedin.com
1,247 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    The IBM SPSS Modeler is a leading, visual data science and machine learning solution. It helps enterprises accelerate time to value and desired outcome by speeding the operational tasks for data scie

    Users
    No information available
    Industries
    • Higher Education
    • Education Management
    Market Segment
    • 52% Enterprise
    • 24% Mid-Market
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • IBM SPSS Modeler features and usability ratings that predict user satisfaction
    7.5
    Application
    Average: 8.5
    7.6
    Managed Service
    Average: 8.2
    6.4
    Natural Language Understanding
    Average: 8.4
    8.1
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    IBM
    Year Founded
    1911
    HQ Location
    Armonk, NY
    Twitter
    @IBM
    709,764 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    331,391 employees on LinkedIn®
    Ownership
    SWX:IBM
Product Description
How are these determined?Information
This description is provided by the seller.

The IBM SPSS Modeler is a leading, visual data science and machine learning solution. It helps enterprises accelerate time to value and desired outcome by speeding the operational tasks for data scie

Users
No information available
Industries
  • Higher Education
  • Education Management
Market Segment
  • 52% Enterprise
  • 24% Mid-Market
IBM SPSS Modeler features and usability ratings that predict user satisfaction
7.5
Application
Average: 8.5
7.6
Managed Service
Average: 8.2
6.4
Natural Language Understanding
Average: 8.4
8.1
Ease of Admin
Average: 8.4
Seller Details
Seller
IBM
Year Founded
1911
HQ Location
Armonk, NY
Twitter
@IBM
709,764 Twitter followers
LinkedIn® Page
www.linkedin.com
331,391 employees on LinkedIn®
Ownership
SWX:IBM
(80)4.4 out of 5
18th Easiest To Use in Data Science and Machine Learning Platforms software
Save to My Lists
Entry Level Price:Free
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Qlik AutoML (automated machine learning) brings AI-generated machine learning models and predictive analytics directly to your organization’s larger community of analytics users and teams, in a simple

    Users
    • Data Analyst
    Industries
    • Information Technology and Services
    • Computer Software
    Market Segment
    • 39% Enterprise
    • 30% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Qlik AutoML Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    AI Capabilities
    3
    AI Integration
    3
    Automation
    3
    Ease of Use
    3
    Machine Learning
    3
    Cons
    Limited Customization
    3
    Deployment Issues
    2
    Lacking Features
    2
    Beginner Difficulty
    1
    Complex Automation
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Qlik AutoML features and usability ratings that predict user satisfaction
    8.3
    Application
    Average: 8.5
    8.1
    Managed Service
    Average: 8.2
    7.6
    Natural Language Understanding
    Average: 8.4
    8.7
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Qlik
    Year Founded
    1993
    HQ Location
    Radnor, PA
    Twitter
    @qlik
    65,014 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    4,091 employees on LinkedIn®
    Phone
    1 (888) 994-9854
Product Description
How are these determined?Information
This description is provided by the seller.

Qlik AutoML (automated machine learning) brings AI-generated machine learning models and predictive analytics directly to your organization’s larger community of analytics users and teams, in a simple

Users
  • Data Analyst
Industries
  • Information Technology and Services
  • Computer Software
Market Segment
  • 39% Enterprise
  • 30% Mid-Market
Qlik AutoML Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
AI Capabilities
3
AI Integration
3
Automation
3
Ease of Use
3
Machine Learning
3
Cons
Limited Customization
3
Deployment Issues
2
Lacking Features
2
Beginner Difficulty
1
Complex Automation
1
Qlik AutoML features and usability ratings that predict user satisfaction
8.3
Application
Average: 8.5
8.1
Managed Service
Average: 8.2
7.6
Natural Language Understanding
Average: 8.4
8.7
Ease of Admin
Average: 8.4
Seller Details
Seller
Qlik
Year Founded
1993
HQ Location
Radnor, PA
Twitter
@qlik
65,014 Twitter followers
LinkedIn® Page
www.linkedin.com
4,091 employees on LinkedIn®
Phone
1 (888) 994-9854
(165)4.2 out of 5
21st Easiest To Use in Data Science and Machine Learning Platforms software
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  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    IBM Watson Studio on IBM Cloud Pak for Data is a leading data science and machine learning solution that helps enterprises accelerate AI-powered digital transformation. It allows businesses to scale t

    Users
    • Software Engineer
    • CEO
    Industries
    • Information Technology and Services
    • Computer Software
    Market Segment
    • 50% Enterprise
    • 30% Small-Business
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • IBM Watson Studio Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    AI Capabilities
    4
    AI Integration
    4
    AI Modeling
    4
    AI Technology
    4
    Ease of Use
    4
    Cons
    Learning Curve
    2
    Steep Learning Curve
    2
    Cost
    1
    Difficulty in Adjustments
    1
    Expensive
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • IBM Watson Studio features and usability ratings that predict user satisfaction
    9.2
    Application
    Average: 8.5
    9.3
    Managed Service
    Average: 8.2
    8.9
    Natural Language Understanding
    Average: 8.4
    7.8
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    IBM
    Year Founded
    1911
    HQ Location
    Armonk, NY
    Twitter
    @IBM
    709,764 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    331,391 employees on LinkedIn®
    Ownership
    SWX:IBM
Product Description
How are these determined?Information
This description is provided by the seller.

IBM Watson Studio on IBM Cloud Pak for Data is a leading data science and machine learning solution that helps enterprises accelerate AI-powered digital transformation. It allows businesses to scale t

Users
  • Software Engineer
  • CEO
Industries
  • Information Technology and Services
  • Computer Software
Market Segment
  • 50% Enterprise
  • 30% Small-Business
IBM Watson Studio Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
AI Capabilities
4
AI Integration
4
AI Modeling
4
AI Technology
4
Ease of Use
4
Cons
Learning Curve
2
Steep Learning Curve
2
Cost
1
Difficulty in Adjustments
1
Expensive
1
IBM Watson Studio features and usability ratings that predict user satisfaction
9.2
Application
Average: 8.5
9.3
Managed Service
Average: 8.2
8.9
Natural Language Understanding
Average: 8.4
7.8
Ease of Admin
Average: 8.4
Seller Details
Seller
IBM
Year Founded
1911
HQ Location
Armonk, NY
Twitter
@IBM
709,764 Twitter followers
LinkedIn® Page
www.linkedin.com
331,391 employees on LinkedIn®
Ownership
SWX:IBM
(90)4.3 out of 5
View top Consulting Services for IBM Cloud Pak for Data
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  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    IBM Cloud Pak® for Data is a fully integrated data and AI platform that modernizes how businesses collect, organize and analyze data, forming the foundation to infuse AI across their organization. Run

    Users
    No information available
    Industries
    • Computer Software
    • Information Technology and Services
    Market Segment
    • 50% Enterprise
    • 28% Small-Business
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • IBM Cloud Pak for Data Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Features
    3
    Analytics
    2
    Data Analytics
    2
    Data Management
    2
    Insights
    2
    Cons
    Complexity
    3
    Complexity Issues
    3
    Complex Implementation
    2
    Complex Setup
    2
    Difficult Setup
    2
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • IBM Cloud Pak for Data features and usability ratings that predict user satisfaction
    8.8
    Application
    Average: 8.5
    8.5
    Managed Service
    Average: 8.2
    9.2
    Natural Language Understanding
    Average: 8.4
    7.6
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    IBM
    Year Founded
    1911
    HQ Location
    Armonk, NY
    Twitter
    @IBM
    709,764 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    331,391 employees on LinkedIn®
    Ownership
    SWX:IBM
Product Description
How are these determined?Information
This description is provided by the seller.

IBM Cloud Pak® for Data is a fully integrated data and AI platform that modernizes how businesses collect, organize and analyze data, forming the foundation to infuse AI across their organization. Run

Users
No information available
Industries
  • Computer Software
  • Information Technology and Services
Market Segment
  • 50% Enterprise
  • 28% Small-Business
IBM Cloud Pak for Data Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Features
3
Analytics
2
Data Analytics
2
Data Management
2
Insights
2
Cons
Complexity
3
Complexity Issues
3
Complex Implementation
2
Complex Setup
2
Difficult Setup
2
IBM Cloud Pak for Data features and usability ratings that predict user satisfaction
8.8
Application
Average: 8.5
8.5
Managed Service
Average: 8.2
9.2
Natural Language Understanding
Average: 8.4
7.6
Ease of Admin
Average: 8.4
Seller Details
Seller
IBM
Year Founded
1911
HQ Location
Armonk, NY
Twitter
@IBM
709,764 Twitter followers
LinkedIn® Page
www.linkedin.com
331,391 employees on LinkedIn®
Ownership
SWX:IBM
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Box Skills is a framework that applies best-of-breed AI technologies from leading providers to your content in Box, creating structure and extracting insights from your data at scale.

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 54% Mid-Market
    • 31% Small-Business
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Box Skills features and usability ratings that predict user satisfaction
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
    8.3
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Box
    Year Founded
    1998
    HQ Location
    Redwood City, CA
    Twitter
    @Box
    76,835 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    3,872 employees on LinkedIn®
    Ownership
    NYSE:BOX
Product Description
How are these determined?Information
This description is provided by the seller.

Box Skills is a framework that applies best-of-breed AI technologies from leading providers to your content in Box, creating structure and extracting insights from your data at scale.

Users
No information available
Industries
No information available
Market Segment
  • 54% Mid-Market
  • 31% Small-Business
Box Skills features and usability ratings that predict user satisfaction
0.0
No information available
0.0
No information available
0.0
No information available
8.3
Ease of Admin
Average: 8.4
Seller Details
Seller
Box
Year Founded
1998
HQ Location
Redwood City, CA
Twitter
@Box
76,835 Twitter followers
LinkedIn® Page
www.linkedin.com
3,872 employees on LinkedIn®
Ownership
NYSE:BOX
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Get high performance for deep learning and generative AI training while lowering costs

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 64% Small-Business
    • 21% Enterprise
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • AWS Trainium features and usability ratings that predict user satisfaction
    8.8
    Application
    Average: 8.5
    8.6
    Managed Service
    Average: 8.2
    8.9
    Natural Language Understanding
    Average: 8.4
    8.9
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Year Founded
    2006
    HQ Location
    Seattle, WA
    Twitter
    @awscloud
    2,229,471 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    143,150 employees on LinkedIn®
    Ownership
    NASDAQ: AMZN
Product Description
How are these determined?Information
This description is provided by the seller.

Get high performance for deep learning and generative AI training while lowering costs

Users
No information available
Industries
No information available
Market Segment
  • 64% Small-Business
  • 21% Enterprise
AWS Trainium features and usability ratings that predict user satisfaction
8.8
Application
Average: 8.5
8.6
Managed Service
Average: 8.2
8.9
Natural Language Understanding
Average: 8.4
8.9
Ease of Admin
Average: 8.4
Seller Details
Year Founded
2006
HQ Location
Seattle, WA
Twitter
@awscloud
2,229,471 Twitter followers
LinkedIn® Page
www.linkedin.com
143,150 employees on LinkedIn®
Ownership
NASDAQ: AMZN
(505)4.6 out of 5
14th Easiest To Use in Data Science and Machine Learning Platforms software
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  • Overview
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  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Altair AI Studio (formerly RapidMiner Studio) is a data science tool that anyone can use to design and prototype highly explainable AI and machine learning models that help build trust throughout an o

    Users
    • Student
    • Data Scientist
    Industries
    • Higher Education
    • Education Management
    Market Segment
    • 43% Small-Business
    • 30% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Altair AI Studio Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    6
    AI Integration
    5
    AI Technology
    5
    Machine Learning
    5
    AI Capabilities
    4
    Cons
    Complexity
    2
    Large Dataset Handling
    2
    Poor Performance
    2
    Slow Performance
    2
    Access Control
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Altair AI Studio features and usability ratings that predict user satisfaction
    8.3
    Application
    Average: 8.5
    8.2
    Managed Service
    Average: 8.2
    7.5
    Natural Language Understanding
    Average: 8.4
    8.4
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Altair
    Year Founded
    1985
    HQ Location
    Troy, MI
    Twitter
    @Altair_Inc
    7,294 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    4,269 employees on LinkedIn®
    Ownership
    NASDAQ:ALTR
Product Description
How are these determined?Information
This description is provided by the seller.

Altair AI Studio (formerly RapidMiner Studio) is a data science tool that anyone can use to design and prototype highly explainable AI and machine learning models that help build trust throughout an o

Users
  • Student
  • Data Scientist
Industries
  • Higher Education
  • Education Management
Market Segment
  • 43% Small-Business
  • 30% Mid-Market
Altair AI Studio Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
6
AI Integration
5
AI Technology
5
Machine Learning
5
AI Capabilities
4
Cons
Complexity
2
Large Dataset Handling
2
Poor Performance
2
Slow Performance
2
Access Control
1
Altair AI Studio features and usability ratings that predict user satisfaction
8.3
Application
Average: 8.5
8.2
Managed Service
Average: 8.2
7.5
Natural Language Understanding
Average: 8.4
8.4
Ease of Admin
Average: 8.4
Seller Details
Seller
Altair
Year Founded
1985
HQ Location
Troy, MI
Twitter
@Altair_Inc
7,294 Twitter followers
LinkedIn® Page
www.linkedin.com
4,269 employees on LinkedIn®
Ownership
NASDAQ:ALTR
(24)4.7 out of 5
8th Easiest To Use in Data Science and Machine Learning Platforms software
Save to My Lists
Entry Level Price:$30 per month
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Enjoy the power of Programmatic Machine Learning

    Users
    • Software Engineer
    • Senior Software Engineer
    Industries
    • Computer Software
    Market Segment
    • 88% Small-Business
    • 8% Mid-Market
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • BigML features and usability ratings that predict user satisfaction
    8.3
    Application
    Average: 8.5
    9.2
    Managed Service
    Average: 8.2
    9.2
    Natural Language Understanding
    Average: 8.4
    9.3
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    BigML
    Year Founded
    2011
    HQ Location
    Corvallis, OR
    Twitter
    @bigmlcom
    6,167 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    32 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Enjoy the power of Programmatic Machine Learning

Users
  • Software Engineer
  • Senior Software Engineer
Industries
  • Computer Software
Market Segment
  • 88% Small-Business
  • 8% Mid-Market
BigML features and usability ratings that predict user satisfaction
8.3
Application
Average: 8.5
9.2
Managed Service
Average: 8.2
9.2
Natural Language Understanding
Average: 8.4
9.3
Ease of Admin
Average: 8.4
Seller Details
Seller
BigML
Year Founded
2011
HQ Location
Corvallis, OR
Twitter
@bigmlcom
6,167 Twitter followers
LinkedIn® Page
www.linkedin.com
32 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Neo4j Graph Data Science is a data science and machine learning engine that uses the relationships in your data to improve predictions. It plugs into enterprise data ecosystems so you can get more dat

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 44% Mid-Market
    • 38% Small-Business
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Neo4j Graph Data Science Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Problem Solving
    2
    AI Capabilities
    1
    Customer Support
    1
    Data Analysis
    1
    Documentation
    1
    Cons
    Beginner Difficulty
    1
    Cost Issues
    1
    Difficult Learning
    1
    Difficulty for Beginners
    1
    Expensive
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Neo4j Graph Data Science features and usability ratings that predict user satisfaction
    8.5
    Application
    Average: 8.5
    8.3
    Managed Service
    Average: 8.2
    8.3
    Natural Language Understanding
    Average: 8.4
    8.3
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Neo4j
    Year Founded
    2007
    HQ Location
    San Mateo, CA
    Twitter
    @neo4j
    46,335 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    905 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Neo4j Graph Data Science is a data science and machine learning engine that uses the relationships in your data to improve predictions. It plugs into enterprise data ecosystems so you can get more dat

Users
No information available
Industries
No information available
Market Segment
  • 44% Mid-Market
  • 38% Small-Business
Neo4j Graph Data Science Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Problem Solving
2
AI Capabilities
1
Customer Support
1
Data Analysis
1
Documentation
1
Cons
Beginner Difficulty
1
Cost Issues
1
Difficult Learning
1
Difficulty for Beginners
1
Expensive
1
Neo4j Graph Data Science features and usability ratings that predict user satisfaction
8.5
Application
Average: 8.5
8.3
Managed Service
Average: 8.2
8.3
Natural Language Understanding
Average: 8.4
8.3
Ease of Admin
Average: 8.4
Seller Details
Seller
Neo4j
Year Founded
2007
HQ Location
San Mateo, CA
Twitter
@neo4j
46,335 Twitter followers
LinkedIn® Page
www.linkedin.com
905 employees on LinkedIn®
(12)4.3 out of 5
View top Consulting Services for Google Cloud AI Hub
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  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Google Cloud’s Artificial Intelligence (AI) Hub is a catalog of plug-and-play AI components, including end-to-end AI pipelines and out-of-the-box algorithms.

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 42% Small-Business
    • 33% Enterprise
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Google Cloud AI Hub features and usability ratings that predict user satisfaction
    8.5
    Application
    Average: 8.5
    8.3
    Managed Service
    Average: 8.2
    7.6
    Natural Language Understanding
    Average: 8.4
    7.5
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Google
    Year Founded
    1998
    HQ Location
    Mountain View, CA
    Twitter
    @google
    32,750,646 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    310,061 employees on LinkedIn®
    Ownership
    NASDAQ:GOOG
Product Description
How are these determined?Information
This description is provided by the seller.

Google Cloud’s Artificial Intelligence (AI) Hub is a catalog of plug-and-play AI components, including end-to-end AI pipelines and out-of-the-box algorithms.

Users
No information available
Industries
No information available
Market Segment
  • 42% Small-Business
  • 33% Enterprise
Google Cloud AI Hub features and usability ratings that predict user satisfaction
8.5
Application
Average: 8.5
8.3
Managed Service
Average: 8.2
7.6
Natural Language Understanding
Average: 8.4
7.5
Ease of Admin
Average: 8.4
Seller Details
Seller
Google
Year Founded
1998
HQ Location
Mountain View, CA
Twitter
@google
32,750,646 Twitter followers
LinkedIn® Page
www.linkedin.com
310,061 employees on LinkedIn®
Ownership
NASDAQ:GOOG
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    TrueFoundry is a cloud-native PaaS that enables enterprise teams to experiment as well as productionize advanced ML and LLM workflows on their own cloud/on-prem infra with full data privacy and securi

    Users
    No information available
    Industries
    • Computer Software
    • Information Technology and Services
    Market Segment
    • 51% Mid-Market
    • 34% Small-Business
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • TrueFoundry Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    37
    Customer Support
    29
    Deployment Ease
    23
    User Interface
    20
    Model Management
    15
    Cons
    Missing Features
    8
    Deployment Issues
    4
    Performance Issues
    3
    Software Bugs
    3
    Complexity Issues
    2
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • TrueFoundry features and usability ratings that predict user satisfaction
    8.1
    Application
    Average: 8.5
    8.6
    Managed Service
    Average: 8.2
    8.1
    Natural Language Understanding
    Average: 8.4
    9.0
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Company Website
    Year Founded
    2021
    HQ Location
    San Francisco, California
    LinkedIn® Page
    www.linkedin.com
    65 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

TrueFoundry is a cloud-native PaaS that enables enterprise teams to experiment as well as productionize advanced ML and LLM workflows on their own cloud/on-prem infra with full data privacy and securi

Users
No information available
Industries
  • Computer Software
  • Information Technology and Services
Market Segment
  • 51% Mid-Market
  • 34% Small-Business
TrueFoundry Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
37
Customer Support
29
Deployment Ease
23
User Interface
20
Model Management
15
Cons
Missing Features
8
Deployment Issues
4
Performance Issues
3
Software Bugs
3
Complexity Issues
2
TrueFoundry features and usability ratings that predict user satisfaction
8.1
Application
Average: 8.5
8.6
Managed Service
Average: 8.2
8.1
Natural Language Understanding
Average: 8.4
9.0
Ease of Admin
Average: 8.4
Seller Details
Company Website
Year Founded
2021
HQ Location
San Francisco, California
LinkedIn® Page
www.linkedin.com
65 employees on LinkedIn®
(57)4.4 out of 5
Optimized for quick response
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  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Incorta is the first and only open data delivery platform that enables real-time analysis of live, detailed data across all systems of record—without the need for complex ETL processes. By enabling di

    Users
    No information available
    Industries
    • Information Technology and Services
    • Computer Software
    Market Segment
    • 58% Enterprise
    • 28% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Incorta Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Data Integration
    2
    Ease of Use
    2
    Easy Integrations
    2
    Performance
    2
    Speed
    2
    Cons
    Slow Performance
    2
    Bugs
    1
    Data Inaccuracy
    1
    Data Management Issues
    1
    Slow Data Loading
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Incorta features and usability ratings that predict user satisfaction
    9.8
    Application
    Average: 8.5
    9.6
    Managed Service
    Average: 8.2
    9.4
    Natural Language Understanding
    Average: 8.4
    9.4
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Incorta
    Company Website
    Year Founded
    2013
    HQ Location
    San Mateo, CA
    Twitter
    @incorta
    1,664 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    301 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Incorta is the first and only open data delivery platform that enables real-time analysis of live, detailed data across all systems of record—without the need for complex ETL processes. By enabling di

Users
No information available
Industries
  • Information Technology and Services
  • Computer Software
Market Segment
  • 58% Enterprise
  • 28% Mid-Market
Incorta Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Data Integration
2
Ease of Use
2
Easy Integrations
2
Performance
2
Speed
2
Cons
Slow Performance
2
Bugs
1
Data Inaccuracy
1
Data Management Issues
1
Slow Data Loading
1
Incorta features and usability ratings that predict user satisfaction
9.8
Application
Average: 8.5
9.6
Managed Service
Average: 8.2
9.4
Natural Language Understanding
Average: 8.4
9.4
Ease of Admin
Average: 8.4
Seller Details
Seller
Incorta
Company Website
Year Founded
2013
HQ Location
San Mateo, CA
Twitter
@incorta
1,664 Twitter followers
LinkedIn® Page
www.linkedin.com
301 employees on LinkedIn®
(25)4.2 out of 5
20th Easiest To Use in Data Science and Machine Learning Platforms software
View top Consulting Services for Google Cloud AutoML
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  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Cloud AutoML is a suite of machine learning products that enables developers with limited machine learning expertise to train high-quality models specific to their business needs, by leveraging Google

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 36% Small-Business
    • 24% Enterprise
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Google Cloud AutoML features and usability ratings that predict user satisfaction
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
    8.2
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Google
    Year Founded
    1998
    HQ Location
    Mountain View, CA
    Twitter
    @google
    32,750,646 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    310,061 employees on LinkedIn®
    Ownership
    NASDAQ:GOOG
Product Description
How are these determined?Information
This description is provided by the seller.

Cloud AutoML is a suite of machine learning products that enables developers with limited machine learning expertise to train high-quality models specific to their business needs, by leveraging Google

Users
No information available
Industries
No information available
Market Segment
  • 36% Small-Business
  • 24% Enterprise
Google Cloud AutoML features and usability ratings that predict user satisfaction
0.0
No information available
0.0
No information available
0.0
No information available
8.2
Ease of Admin
Average: 8.4
Seller Details
Seller
Google
Year Founded
1998
HQ Location
Mountain View, CA
Twitter
@google
32,750,646 Twitter followers
LinkedIn® Page
www.linkedin.com
310,061 employees on LinkedIn®
Ownership
NASDAQ:GOOG
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Posit was founded with the mission to create open-source software for data science, scientific research, and technical communication. We don’t just say this: it’s fundamentally baked into our corporat

    Users
    • Research Assistant
    • Graduate Research Assistant
    Industries
    • Higher Education
    • Information Technology and Services
    Market Segment
    • 49% Enterprise
    • 27% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Posit Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    4
    Open Source
    3
    Cloud Computing
    2
    Cloud Integration
    2
    Easy Integrations
    2
    Cons
    Slow Performance
    3
    Poor UI Design
    2
    UX Improvement
    2
    Error Clarity
    1
    Learning Curve
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Posit features and usability ratings that predict user satisfaction
    8.4
    Application
    Average: 8.5
    8.3
    Managed Service
    Average: 8.2
    8.5
    Natural Language Understanding
    Average: 8.4
    8.3
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Posit
    Year Founded
    2009
    HQ Location
    Boston, MA
    Twitter
    @posit_pbc
    123,669 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    431 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Posit was founded with the mission to create open-source software for data science, scientific research, and technical communication. We don’t just say this: it’s fundamentally baked into our corporat

Users
  • Research Assistant
  • Graduate Research Assistant
Industries
  • Higher Education
  • Information Technology and Services
Market Segment
  • 49% Enterprise
  • 27% Mid-Market
Posit Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
4
Open Source
3
Cloud Computing
2
Cloud Integration
2
Easy Integrations
2
Cons
Slow Performance
3
Poor UI Design
2
UX Improvement
2
Error Clarity
1
Learning Curve
1
Posit features and usability ratings that predict user satisfaction
8.4
Application
Average: 8.5
8.3
Managed Service
Average: 8.2
8.5
Natural Language Understanding
Average: 8.4
8.3
Ease of Admin
Average: 8.4
Seller Details
Seller
Posit
Year Founded
2009
HQ Location
Boston, MA
Twitter
@posit_pbc
123,669 Twitter followers
LinkedIn® Page
www.linkedin.com
431 employees on LinkedIn®
(41)4.5 out of 5
17th Easiest To Use in Data Science and Machine Learning Platforms software
Save to My Lists
Entry Level Price:Free
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    IBM Decision Optimization is a family of prescriptive analytics products that combines mathematical and AI techniques to help with business decision-making including operational, tactical and strategi

    Users
    No information available
    Industries
    • Computer Software
    • Financial Services
    Market Segment
    • 59% Enterprise
    • 22% Small-Business
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • IBM Decision Optimization features and usability ratings that predict user satisfaction
    8.3
    Application
    Average: 8.5
    8.3
    Managed Service
    Average: 8.2
    7.3
    Natural Language Understanding
    Average: 8.4
    8.7
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    IBM
    Year Founded
    1911
    HQ Location
    Armonk, NY
    Twitter
    @IBM
    709,764 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    331,391 employees on LinkedIn®
    Ownership
    SWX:IBM
Product Description
How are these determined?Information
This description is provided by the seller.

IBM Decision Optimization is a family of prescriptive analytics products that combines mathematical and AI techniques to help with business decision-making including operational, tactical and strategi

Users
No information available
Industries
  • Computer Software
  • Financial Services
Market Segment
  • 59% Enterprise
  • 22% Small-Business
IBM Decision Optimization features and usability ratings that predict user satisfaction
8.3
Application
Average: 8.5
8.3
Managed Service
Average: 8.2
7.3
Natural Language Understanding
Average: 8.4
8.7
Ease of Admin
Average: 8.4
Seller Details
Seller
IBM
Year Founded
1911
HQ Location
Armonk, NY
Twitter
@IBM
709,764 Twitter followers
LinkedIn® Page
www.linkedin.com
331,391 employees on LinkedIn®
Ownership
SWX:IBM
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    DagsHub is a platform that allows you to easily create high-quality datasets for better model performance A single AI platform to curate vision, audio, and document data - automate labeling workflo

    Users
    No information available
    Industries
    • Computer Software
    Market Segment
    • 50% Small-Business
    • 43% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • DagsHub Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Data Management
    12
    Model Management
    12
    Collaboration
    11
    Features
    10
    Integrated Platform
    10
    Cons
    Limited Functionality
    2
    Error Handling
    1
    Expensive
    1
    Limited Customization
    1
    Limited Free Access
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • DagsHub features and usability ratings that predict user satisfaction
    8.8
    Application
    Average: 8.5
    8.6
    Managed Service
    Average: 8.2
    8.8
    Natural Language Understanding
    Average: 8.4
    9.2
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    DagsHub
    HQ Location
    San Francisco, US
    LinkedIn® Page
    www.linkedin.com
    19 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

DagsHub is a platform that allows you to easily create high-quality datasets for better model performance A single AI platform to curate vision, audio, and document data - automate labeling workflo

Users
No information available
Industries
  • Computer Software
Market Segment
  • 50% Small-Business
  • 43% Mid-Market
DagsHub Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Data Management
12
Model Management
12
Collaboration
11
Features
10
Integrated Platform
10
Cons
Limited Functionality
2
Error Handling
1
Expensive
1
Limited Customization
1
Limited Free Access
1
DagsHub features and usability ratings that predict user satisfaction
8.8
Application
Average: 8.5
8.6
Managed Service
Average: 8.2
8.8
Natural Language Understanding
Average: 8.4
9.2
Ease of Admin
Average: 8.4
Seller Details
Seller
DagsHub
HQ Location
San Francisco, US
LinkedIn® Page
www.linkedin.com
19 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Domino powers model-driven businesses with its leading Enterprise AI platform that accelerates the development and deployment of data science work while increasing collaboration and governance. More t

    Users
    No information available
    Industries
    • Computer Software
    • Information Technology and Services
    Market Segment
    • 46% Enterprise
    • 39% Small-Business
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Domino Enterprise AI Platform Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    9
    Easy Integrations
    5
    Machine Learning
    5
    User Interface
    5
    Cloud Computing
    4
    Cons
    Integration Difficulty
    4
    Learning Curve
    4
    Expensive
    3
    Limited Customization
    3
    Steep Learning Curve
    3
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Domino Enterprise AI Platform features and usability ratings that predict user satisfaction
    8.5
    Application
    Average: 8.5
    8.2
    Managed Service
    Average: 8.2
    8.2
    Natural Language Understanding
    Average: 8.4
    8.1
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Year Founded
    2013
    HQ Location
    San Francisco, CA
    Twitter
    @DominoDataLab
    8,019 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    273 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Domino powers model-driven businesses with its leading Enterprise AI platform that accelerates the development and deployment of data science work while increasing collaboration and governance. More t

Users
No information available
Industries
  • Computer Software
  • Information Technology and Services
Market Segment
  • 46% Enterprise
  • 39% Small-Business
Domino Enterprise AI Platform Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
9
Easy Integrations
5
Machine Learning
5
User Interface
5
Cloud Computing
4
Cons
Integration Difficulty
4
Learning Curve
4
Expensive
3
Limited Customization
3
Steep Learning Curve
3
Domino Enterprise AI Platform features and usability ratings that predict user satisfaction
8.5
Application
Average: 8.5
8.2
Managed Service
Average: 8.2
8.2
Natural Language Understanding
Average: 8.4
8.1
Ease of Admin
Average: 8.4
Seller Details
Year Founded
2013
HQ Location
San Francisco, CA
Twitter
@DominoDataLab
8,019 Twitter followers
LinkedIn® Page
www.linkedin.com
273 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    SAS Enterprise Miner is a software provide insights that drive better decision making, it streamline the data mining process to develop models quickly, understand key relationships and find the patter

    Users
    No information available
    Industries
    • Higher Education
    • Information Technology and Services
    Market Segment
    • 59% Enterprise
    • 28% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • SAS Enterprise Miner Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Analytics
    2
    Ease of Use
    2
    Machine Learning
    2
    Modeling
    2
    Predictive Modeling
    2
    Cons
    Large Dataset Handling
    2
    Slow Performance
    2
    Beginner Difficulty
    1
    Complexity
    1
    Learning Curve
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • SAS Enterprise Miner features and usability ratings that predict user satisfaction
    8.1
    Application
    Average: 8.5
    8.1
    Managed Service
    Average: 8.2
    8.1
    Natural Language Understanding
    Average: 8.4
    7.7
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Year Founded
    1976
    HQ Location
    Cary, NC
    Twitter
    @SASsoftware
    61,921 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    17,528 employees on LinkedIn®
    Phone
    1-800-727-0025
Product Description
How are these determined?Information
This description is provided by the seller.

SAS Enterprise Miner is a software provide insights that drive better decision making, it streamline the data mining process to develop models quickly, understand key relationships and find the patter

Users
No information available
Industries
  • Higher Education
  • Information Technology and Services
Market Segment
  • 59% Enterprise
  • 28% Mid-Market
SAS Enterprise Miner Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Analytics
2
Ease of Use
2
Machine Learning
2
Modeling
2
Predictive Modeling
2
Cons
Large Dataset Handling
2
Slow Performance
2
Beginner Difficulty
1
Complexity
1
Learning Curve
1
SAS Enterprise Miner features and usability ratings that predict user satisfaction
8.1
Application
Average: 8.5
8.1
Managed Service
Average: 8.2
8.1
Natural Language Understanding
Average: 8.4
7.7
Ease of Admin
Average: 8.4
Seller Details
Year Founded
1976
HQ Location
Cary, NC
Twitter
@SASsoftware
61,921 Twitter followers
LinkedIn® Page
www.linkedin.com
17,528 employees on LinkedIn®
Phone
1-800-727-0025
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    SAS® Visual Data Mining and Machine Learning is a comprehensive machine learning application that provides both visual and programming interfaces for users to execute the entire machine learning pipel

    Users
    • Inside Sales Manager
    Industries
    • Computer Software
    Market Segment
    • 44% Enterprise
    • 18% Small-Business
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • SAS Visual Data Mining and Machine Learning Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Dashboard Management
    1
    Machine Learning
    1
    Model Variety
    1
    Cons
    Complexity
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • SAS Visual Data Mining and Machine Learning features and usability ratings that predict user satisfaction
    9.0
    Application
    Average: 8.5
    8.3
    Managed Service
    Average: 8.2
    8.7
    Natural Language Understanding
    Average: 8.4
    8.8
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Year Founded
    1976
    HQ Location
    Cary, NC
    Twitter
    @SASsoftware
    61,921 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    17,528 employees on LinkedIn®
    Phone
    1-800-727-0025
Product Description
How are these determined?Information
This description is provided by the seller.

SAS® Visual Data Mining and Machine Learning is a comprehensive machine learning application that provides both visual and programming interfaces for users to execute the entire machine learning pipel

Users
  • Inside Sales Manager
Industries
  • Computer Software
Market Segment
  • 44% Enterprise
  • 18% Small-Business
SAS Visual Data Mining and Machine Learning Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Dashboard Management
1
Machine Learning
1
Model Variety
1
Cons
Complexity
1
SAS Visual Data Mining and Machine Learning features and usability ratings that predict user satisfaction
9.0
Application
Average: 8.5
8.3
Managed Service
Average: 8.2
8.7
Natural Language Understanding
Average: 8.4
8.8
Ease of Admin
Average: 8.4
Seller Details
Year Founded
1976
HQ Location
Cary, NC
Twitter
@SASsoftware
61,921 Twitter followers
LinkedIn® Page
www.linkedin.com
17,528 employees on LinkedIn®
Phone
1-800-727-0025
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Explorium offers a first-of-its-kind data science platform powered by automatic data discovery and feature engineering. By automatically connecting to thousands of external data sources (premium, part

    Users
    No information available
    Industries
    • Financial Services
    Market Segment
    • 69% Mid-Market
    • 23% Small-Business
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Explorium features and usability ratings that predict user satisfaction
    10.0
    Application
    Average: 8.5
    10.0
    Managed Service
    Average: 8.2
    10.0
    Natural Language Understanding
    Average: 8.4
    10.0
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Explorium
    HQ Location
    San Mateo, California
    Twitter
    @Explorium_ai
    1,388 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    80 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Explorium offers a first-of-its-kind data science platform powered by automatic data discovery and feature engineering. By automatically connecting to thousands of external data sources (premium, part

Users
No information available
Industries
  • Financial Services
Market Segment
  • 69% Mid-Market
  • 23% Small-Business
Explorium features and usability ratings that predict user satisfaction
10.0
Application
Average: 8.5
10.0
Managed Service
Average: 8.2
10.0
Natural Language Understanding
Average: 8.4
10.0
Ease of Admin
Average: 8.4
Seller Details
Seller
Explorium
HQ Location
San Mateo, California
Twitter
@Explorium_ai
1,388 Twitter followers
LinkedIn® Page
www.linkedin.com
80 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Dataloop is a cutting-edge AI Development Platform that's transforming the way organizations build AI applications. Our platform is meticulously crafted to cater to developers at the heart of the AI d

    Users
    No information available
    Industries
    • Computer Software
    • Information Technology and Services
    Market Segment
    • 39% Mid-Market
    • 32% Small-Business
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Dataloop Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    30
    Annotation Efficiency
    14
    Annotation Tools
    13
    Data Management
    13
    Efficiency
    11
    Cons
    Performance Issues
    9
    Difficult Learning
    8
    Lagging Issues
    8
    Slow Performance
    7
    Slow Loading
    6
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Dataloop features and usability ratings that predict user satisfaction
    8.7
    Application
    Average: 8.5
    8.6
    Managed Service
    Average: 8.2
    8.6
    Natural Language Understanding
    Average: 8.4
    8.8
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Dataloop
    Year Founded
    2017
    HQ Location
    Herzliya, IL
    LinkedIn® Page
    www.linkedin.com
    72 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Dataloop is a cutting-edge AI Development Platform that's transforming the way organizations build AI applications. Our platform is meticulously crafted to cater to developers at the heart of the AI d

Users
No information available
Industries
  • Computer Software
  • Information Technology and Services
Market Segment
  • 39% Mid-Market
  • 32% Small-Business
Dataloop Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
30
Annotation Efficiency
14
Annotation Tools
13
Data Management
13
Efficiency
11
Cons
Performance Issues
9
Difficult Learning
8
Lagging Issues
8
Slow Performance
7
Slow Loading
6
Dataloop features and usability ratings that predict user satisfaction
8.7
Application
Average: 8.5
8.6
Managed Service
Average: 8.2
8.6
Natural Language Understanding
Average: 8.4
8.8
Ease of Admin
Average: 8.4
Seller Details
Seller
Dataloop
Year Founded
2017
HQ Location
Herzliya, IL
LinkedIn® Page
www.linkedin.com
72 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Dash is the trusted solution for operationalizing Python models, allowing data science teams to focus on data and models, while still producing and deploying enterprise-ready apps. What would typicall

    Users
    No information available
    Industries
    • Computer Software
    Market Segment
    • 47% Small-Business
    • 31% Enterprise
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Plotly Dash Enterprise Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Charting Features
    1
    Coding Ease
    1
    Customer Support
    1
    Dashboard Management
    1
    Data Visualization
    1
    Cons
    This product has not yet received any negative sentiments.
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Plotly Dash Enterprise features and usability ratings that predict user satisfaction
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
    8.3
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Plotly
    Year Founded
    2013
    HQ Location
    Montréal, CA
    Twitter
    @plotlygraphs
    41,824 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    124 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Dash is the trusted solution for operationalizing Python models, allowing data science teams to focus on data and models, while still producing and deploying enterprise-ready apps. What would typicall

Users
No information available
Industries
  • Computer Software
Market Segment
  • 47% Small-Business
  • 31% Enterprise
Plotly Dash Enterprise Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Charting Features
1
Coding Ease
1
Customer Support
1
Dashboard Management
1
Data Visualization
1
Cons
This product has not yet received any negative sentiments.
Plotly Dash Enterprise features and usability ratings that predict user satisfaction
0.0
No information available
0.0
No information available
0.0
No information available
8.3
Ease of Admin
Average: 8.4
Seller Details
Seller
Plotly
Year Founded
2013
HQ Location
Montréal, CA
Twitter
@plotlygraphs
41,824 Twitter followers
LinkedIn® Page
www.linkedin.com
124 employees on LinkedIn®
Entry Level Price:Free
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    TIMi is the most efficient Data Science and Data Processing Platform. Since 2007, we have been creating and improving the most powerful framework to push the barriers of analytics, predictive analyt

    Users
    No information available
    Industries
    • Information Technology and Services
    • Banking
    Market Segment
    • 39% Small-Business
    • 33% Enterprise
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • TIMi Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Customer Support
    3
    Ease of Use
    3
    Features
    3
    Community Support
    2
    Efficiency
    2
    Cons
    This product has not yet received any negative sentiments.
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • TIMi features and usability ratings that predict user satisfaction
    8.6
    Application
    Average: 8.5
    8.5
    Managed Service
    Average: 8.2
    9.0
    Natural Language Understanding
    Average: 8.4
    8.5
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    TIMi SPRL
    Company Website
    Year Founded
    2007
    HQ Location
    Brussels
    Twitter
    @TIMiSuite
    3,652 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    75 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

TIMi is the most efficient Data Science and Data Processing Platform. Since 2007, we have been creating and improving the most powerful framework to push the barriers of analytics, predictive analyt

Users
No information available
Industries
  • Information Technology and Services
  • Banking
Market Segment
  • 39% Small-Business
  • 33% Enterprise
TIMi Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Customer Support
3
Ease of Use
3
Features
3
Community Support
2
Efficiency
2
Cons
This product has not yet received any negative sentiments.
TIMi features and usability ratings that predict user satisfaction
8.6
Application
Average: 8.5
8.5
Managed Service
Average: 8.2
9.0
Natural Language Understanding
Average: 8.4
8.5
Ease of Admin
Average: 8.4
Seller Details
Seller
TIMi SPRL
Company Website
Year Founded
2007
HQ Location
Brussels
Twitter
@TIMiSuite
3,652 Twitter followers
LinkedIn® Page
www.linkedin.com
75 employees on LinkedIn®
Entry Level Price:Contact Us
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Encord is the multimodal data management platform for AI. With Encord, AI teams can easily manage, curate, and label images, videos, audio, documents, text, and DICOM files on one unified platform whi

    Users
    No information available
    Industries
    • Computer Software
    • Hospital & Health Care
    Market Segment
    • 51% Small-Business
    • 41% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Encord Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Annotation Efficiency
    10
    Annotation Tools
    10
    Ease of Use
    10
    Team Collaboration
    6
    Image Segmentation
    5
    Cons
    Missing Features
    6
    Lacking Features
    4
    Difficult Navigation
    3
    Lagging Issues
    3
    Latency Issues
    3
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Encord features and usability ratings that predict user satisfaction
    9.7
    Application
    Average: 8.5
    10.0
    Managed Service
    Average: 8.2
    10.0
    Natural Language Understanding
    Average: 8.4
    7.8
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Encord
    Year Founded
    2020
    HQ Location
    San Francisco, US
    Twitter
    @encord_team
    622 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    96 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Encord is the multimodal data management platform for AI. With Encord, AI teams can easily manage, curate, and label images, videos, audio, documents, text, and DICOM files on one unified platform whi

Users
No information available
Industries
  • Computer Software
  • Hospital & Health Care
Market Segment
  • 51% Small-Business
  • 41% Mid-Market
Encord Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Annotation Efficiency
10
Annotation Tools
10
Ease of Use
10
Team Collaboration
6
Image Segmentation
5
Cons
Missing Features
6
Lacking Features
4
Difficult Navigation
3
Lagging Issues
3
Latency Issues
3
Encord features and usability ratings that predict user satisfaction
9.7
Application
Average: 8.5
10.0
Managed Service
Average: 8.2
10.0
Natural Language Understanding
Average: 8.4
7.8
Ease of Admin
Average: 8.4
Seller Details
Seller
Encord
Year Founded
2020
HQ Location
San Francisco, US
Twitter
@encord_team
622 Twitter followers
LinkedIn® Page
www.linkedin.com
96 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Red Hat® OpenShift® AI is a flexible, scalable artificial intelligence (AI) and machine learning (ML) platform that enables enterprises to create and deliver AI-enabled applications at scale across hy

    Users
    No information available
    Industries
    • Market Research
    • Marketing and Advertising
    Market Segment
    • 44% Mid-Market
    • 36% Enterprise
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Red Hat OpenShift Data Science Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Customer Support
    1
    Ease of Use
    1
    Fast Processing
    1
    Cons
    Required Knowledge
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Red Hat OpenShift Data Science features and usability ratings that predict user satisfaction
    8.7
    Application
    Average: 8.5
    8.8
    Managed Service
    Average: 8.2
    8.6
    Natural Language Understanding
    Average: 8.4
    6.7
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Red Hat
    Year Founded
    1993
    HQ Location
    Raleigh, NC
    Twitter
    @RedHat
    295,491 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    19,596 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Red Hat® OpenShift® AI is a flexible, scalable artificial intelligence (AI) and machine learning (ML) platform that enables enterprises to create and deliver AI-enabled applications at scale across hy

Users
No information available
Industries
  • Market Research
  • Marketing and Advertising
Market Segment
  • 44% Mid-Market
  • 36% Enterprise
Red Hat OpenShift Data Science Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Customer Support
1
Ease of Use
1
Fast Processing
1
Cons
Required Knowledge
1
Red Hat OpenShift Data Science features and usability ratings that predict user satisfaction
8.7
Application
Average: 8.5
8.8
Managed Service
Average: 8.2
8.6
Natural Language Understanding
Average: 8.4
6.7
Ease of Admin
Average: 8.4
Seller Details
Seller
Red Hat
Year Founded
1993
HQ Location
Raleigh, NC
Twitter
@RedHat
295,491 Twitter followers
LinkedIn® Page
www.linkedin.com
19,596 employees on LinkedIn®
Entry Level Price:Free
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Clarifai is a leader in AI orchestration and development, helping organizations, teams, and developers build, deploy, orchestrate, and operationalize AI at scale. Clarifai’s cutting-edge AI workflow o

    Users
    No information available
    Industries
    • Computer Software
    • Information Technology and Services
    Market Segment
    • 59% Small-Business
    • 27% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Clarifai Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    26
    Model Variety
    25
    Features
    21
    Easy Integrations
    14
    AI Technology
    12
    Cons
    Expensive
    8
    Poor Documentation
    8
    Slow Performance
    7
    UX Improvement
    7
    Difficult Learning
    6
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Clarifai features and usability ratings that predict user satisfaction
    8.6
    Application
    Average: 8.5
    8.2
    Managed Service
    Average: 8.2
    8.7
    Natural Language Understanding
    Average: 8.4
    8.8
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Clarifai
    Company Website
    Year Founded
    2013
    HQ Location
    Wilmington, Delaware
    Twitter
    @clarifai
    10,913 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    95 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Clarifai is a leader in AI orchestration and development, helping organizations, teams, and developers build, deploy, orchestrate, and operationalize AI at scale. Clarifai’s cutting-edge AI workflow o

Users
No information available
Industries
  • Computer Software
  • Information Technology and Services
Market Segment
  • 59% Small-Business
  • 27% Mid-Market
Clarifai Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
26
Model Variety
25
Features
21
Easy Integrations
14
AI Technology
12
Cons
Expensive
8
Poor Documentation
8
Slow Performance
7
UX Improvement
7
Difficult Learning
6
Clarifai features and usability ratings that predict user satisfaction
8.6
Application
Average: 8.5
8.2
Managed Service
Average: 8.2
8.7
Natural Language Understanding
Average: 8.4
8.8
Ease of Admin
Average: 8.4
Seller Details
Seller
Clarifai
Company Website
Year Founded
2013
HQ Location
Wilmington, Delaware
Twitter
@clarifai
10,913 Twitter followers
LinkedIn® Page
www.linkedin.com
95 employees on LinkedIn®
(24)4.5 out of 5
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  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    H2O.ai is the leading AI Cloud company, on a mission to democratize AI and drive an open AI movement around the world. They focus on drawing insights from structured and unstructured data like video a

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 54% Small-Business
    • 29% Enterprise
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • H2O features and usability ratings that predict user satisfaction
    7.0
    Application
    Average: 8.5
    6.9
    Managed Service
    Average: 8.2
    8.3
    Natural Language Understanding
    Average: 8.4
    8.3
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    H2O.ai
    Year Founded
    2012
    HQ Location
    Mountain View, CA
    Twitter
    @h2oai
    25,347 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    330 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

H2O.ai is the leading AI Cloud company, on a mission to democratize AI and drive an open AI movement around the world. They focus on drawing insights from structured and unstructured data like video a

Users
No information available
Industries
No information available
Market Segment
  • 54% Small-Business
  • 29% Enterprise
H2O features and usability ratings that predict user satisfaction
7.0
Application
Average: 8.5
6.9
Managed Service
Average: 8.2
8.3
Natural Language Understanding
Average: 8.4
8.3
Ease of Admin
Average: 8.4
Seller Details
Seller
H2O.ai
Year Founded
2012
HQ Location
Mountain View, CA
Twitter
@h2oai
25,347 Twitter followers
LinkedIn® Page
www.linkedin.com
330 employees on LinkedIn®
(26)4.4 out of 5
22nd Easiest To Use in Data Science and Machine Learning Platforms software
View top Consulting Services for DataRobot
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  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    DataRobot’s enterprise AI platform democratizes data science with end-to-end automation for building, deploying, and managing machine learning models. This platform maximizes business value by deliver

    Users
    No information available
    Industries
    • Computer Software
    Market Segment
    • 58% Small-Business
    • 31% Enterprise
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • DataRobot features and usability ratings that predict user satisfaction
    5.0
    Application
    Average: 8.5
    1.7
    Managed Service
    Average: 8.2
    0.0
    Natural Language Understanding
    Average: 8.4
    7.4
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    DataRobot
    Year Founded
    2012
    HQ Location
    Boston, Massachusetts
    Twitter
    @DataRobot
    19,428 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    959 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

DataRobot’s enterprise AI platform democratizes data science with end-to-end automation for building, deploying, and managing machine learning models. This platform maximizes business value by deliver

Users
No information available
Industries
  • Computer Software
Market Segment
  • 58% Small-Business
  • 31% Enterprise
DataRobot features and usability ratings that predict user satisfaction
5.0
Application
Average: 8.5
1.7
Managed Service
Average: 8.2
0.0
Natural Language Understanding
Average: 8.4
7.4
Ease of Admin
Average: 8.4
Seller Details
Seller
DataRobot
Year Founded
2012
HQ Location
Boston, Massachusetts
Twitter
@DataRobot
19,428 Twitter followers
LinkedIn® Page
www.linkedin.com
959 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    CUDA is a parallel computing platform and programming model that enables dramatic increases in computing performance by harnessing the power of the NVIDIA GPUs. These images extend the CUDA images to

    Users
    No information available
    Industries
    • Computer Software
    Market Segment
    • 62% Small-Business
    • 26% Enterprise
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • NVIDIA CUDA GL Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Fast Processing
    1
    Performance Efficiency
    1
    Cons
    Complexity
    1
    Difficult Learning
    1
    Learning Curve
    1
    Learning Difficulty
    1
    Limited Language Support
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • NVIDIA CUDA GL features and usability ratings that predict user satisfaction
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
    8.3
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    NVIDIA
    Year Founded
    1993
    HQ Location
    Santa Clara, CA
    Twitter
    @nvidia
    2,363,899 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    39,703 employees on LinkedIn®
    Ownership
    NVDA
Product Description
How are these determined?Information
This description is provided by the seller.

CUDA is a parallel computing platform and programming model that enables dramatic increases in computing performance by harnessing the power of the NVIDIA GPUs. These images extend the CUDA images to

Users
No information available
Industries
  • Computer Software
Market Segment
  • 62% Small-Business
  • 26% Enterprise
NVIDIA CUDA GL Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Fast Processing
1
Performance Efficiency
1
Cons
Complexity
1
Difficult Learning
1
Learning Curve
1
Learning Difficulty
1
Limited Language Support
1
NVIDIA CUDA GL features and usability ratings that predict user satisfaction
0.0
No information available
0.0
No information available
0.0
No information available
8.3
Ease of Admin
Average: 8.4
Seller Details
Seller
NVIDIA
Year Founded
1993
HQ Location
Santa Clara, CA
Twitter
@nvidia
2,363,899 Twitter followers
LinkedIn® Page
www.linkedin.com
39,703 employees on LinkedIn®
Ownership
NVDA
(17)4.5 out of 5
19th Easiest To Use in Data Science and Machine Learning Platforms software
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  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Design, train, and deploy deep learning models without coding.

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 59% Small-Business
    • 24% Mid-Market
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Deep Cognition features and usability ratings that predict user satisfaction
    7.5
    Application
    Average: 8.5
    6.7
    Managed Service
    Average: 8.2
    7.5
    Natural Language Understanding
    Average: 8.4
    8.7
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Year Founded
    2017
    HQ Location
    Dallas, Texas
    Twitter
    @DeepCogLabs
    14 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    51 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Design, train, and deploy deep learning models without coding.

Users
No information available
Industries
No information available
Market Segment
  • 59% Small-Business
  • 24% Mid-Market
Deep Cognition features and usability ratings that predict user satisfaction
7.5
Application
Average: 8.5
6.7
Managed Service
Average: 8.2
7.5
Natural Language Understanding
Average: 8.4
8.7
Ease of Admin
Average: 8.4
Seller Details
Year Founded
2017
HQ Location
Dallas, Texas
Twitter
@DeepCogLabs
14 Twitter followers
LinkedIn® Page
www.linkedin.com
51 employees on LinkedIn®
Entry Level Price:30 day free trial
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Qubole is the open data lake company that provides a simple and secure data lake platform for machine learning, streaming, and ad-hoc analytics. No other platform provides the openness and data worklo

    Users
    • Software Engineer
    • Data Scientist
    Industries
    • Computer Software
    • Information Technology and Services
    Market Segment
    • 51% Enterprise
    • 44% Mid-Market
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Qubole features and usability ratings that predict user satisfaction
    8.1
    Application
    Average: 8.5
    8.6
    Managed Service
    Average: 8.2
    8.3
    Natural Language Understanding
    Average: 8.4
    7.6
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Qubole
    Year Founded
    2011
    HQ Location
    Santa Clara, CA
    Twitter
    @qubole
    9,595 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    30 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Qubole is the open data lake company that provides a simple and secure data lake platform for machine learning, streaming, and ad-hoc analytics. No other platform provides the openness and data worklo

Users
  • Software Engineer
  • Data Scientist
Industries
  • Computer Software
  • Information Technology and Services
Market Segment
  • 51% Enterprise
  • 44% Mid-Market
Qubole features and usability ratings that predict user satisfaction
8.1
Application
Average: 8.5
8.6
Managed Service
Average: 8.2
8.3
Natural Language Understanding
Average: 8.4
7.6
Ease of Admin
Average: 8.4
Seller Details
Seller
Qubole
Year Founded
2011
HQ Location
Santa Clara, CA
Twitter
@qubole
9,595 Twitter followers
LinkedIn® Page
www.linkedin.com
30 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Automaton AI is an AI software company that provides platforms for Computer Vision & ML Scientists to rapidly curate and experiment with their datasets in order to build higher performing ML &

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 50% Enterprise
    • 36% Small-Business
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Automaton AI Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Automation
    1
    Customer Support
    1
    Ease of Use
    1
    Easy Integrations
    1
    Efficiency
    1
    Cons
    Cost
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Automaton AI features and usability ratings that predict user satisfaction
    8.1
    Application
    Average: 8.5
    8.1
    Managed Service
    Average: 8.2
    8.1
    Natural Language Understanding
    Average: 8.4
    10.0
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Year Founded
    2019
    HQ Location
    Pune, IN
    Twitter
    @automatonai
    13 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    48 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Automaton AI is an AI software company that provides platforms for Computer Vision & ML Scientists to rapidly curate and experiment with their datasets in order to build higher performing ML &

Users
No information available
Industries
No information available
Market Segment
  • 50% Enterprise
  • 36% Small-Business
Automaton AI Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Automation
1
Customer Support
1
Ease of Use
1
Easy Integrations
1
Efficiency
1
Cons
Cost
1
Automaton AI features and usability ratings that predict user satisfaction
8.1
Application
Average: 8.5
8.1
Managed Service
Average: 8.2
8.1
Natural Language Understanding
Average: 8.4
10.0
Ease of Admin
Average: 8.4
Seller Details
Year Founded
2019
HQ Location
Pune, IN
Twitter
@automatonai
13 Twitter followers
LinkedIn® Page
www.linkedin.com
48 employees on LinkedIn®
Entry Level Price:$49.00
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Akkio is the only AI data platform specifically built for agencies to improve performance across the entire client engagement lifecycle — from pitch to campaign optimization to reporting. Book a mee

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 64% Small-Business
    • 14% Enterprise
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Akkio Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    AI Integration
    1
    Machine Learning
    1
    Cons
    Insufficient Learning Resources
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Akkio features and usability ratings that predict user satisfaction
    9.3
    Application
    Average: 8.5
    9.0
    Managed Service
    Average: 8.2
    8.8
    Natural Language Understanding
    Average: 8.4
    9.4
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Year Founded
    2019
    HQ Location
    Cambridge, US
    Twitter
    @AkkioHQ
    5,535 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    43 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Akkio is the only AI data platform specifically built for agencies to improve performance across the entire client engagement lifecycle — from pitch to campaign optimization to reporting. Book a mee

Users
No information available
Industries
No information available
Market Segment
  • 64% Small-Business
  • 14% Enterprise
Akkio Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
AI Integration
1
Machine Learning
1
Cons
Insufficient Learning Resources
1
Akkio features and usability ratings that predict user satisfaction
9.3
Application
Average: 8.5
9.0
Managed Service
Average: 8.2
8.8
Natural Language Understanding
Average: 8.4
9.4
Ease of Admin
Average: 8.4
Seller Details
Year Founded
2019
HQ Location
Cambridge, US
Twitter
@AkkioHQ
5,535 Twitter followers
LinkedIn® Page
www.linkedin.com
43 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Beijing ZetYun Technology Co., Ltd. (DataCanvas) was founded in 2013, focusing on the continuous development and construction of automatic data science platform, focusing on providing a complete set o

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 50% Enterprise
    • 30% Mid-Market
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • DataCanvas features and usability ratings that predict user satisfaction
    9.4
    Application
    Average: 8.5
    8.9
    Managed Service
    Average: 8.2
    8.9
    Natural Language Understanding
    Average: 8.4
    10.0
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Year Founded
    2014
    HQ Location
    N/A
    LinkedIn® Page
    www.linkedin.com
    2 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Beijing ZetYun Technology Co., Ltd. (DataCanvas) was founded in 2013, focusing on the continuous development and construction of automatic data science platform, focusing on providing a complete set o

Users
No information available
Industries
No information available
Market Segment
  • 50% Enterprise
  • 30% Mid-Market
DataCanvas features and usability ratings that predict user satisfaction
9.4
Application
Average: 8.5
8.9
Managed Service
Average: 8.2
8.9
Natural Language Understanding
Average: 8.4
10.0
Ease of Admin
Average: 8.4
Seller Details
Year Founded
2014
HQ Location
N/A
LinkedIn® Page
www.linkedin.com
2 employees on LinkedIn®
(356)4.2 out of 5
Optimized for quick response
Save to My Lists
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Spotfire is a visual data science platform designed to help organizations address complex, industry-specific challenges through the effective use of data. This solution offers a range of flexible pack

    Users
    • Student
    • Manager
    Industries
    • Oil & Energy
    • Information Technology and Services
    Market Segment
    • 53% Enterprise
    • 25% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Spotfire Analytics Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    41
    Data Visualization
    35
    Insights
    23
    Visualization
    23
    Features
    19
    Cons
    Learning Curve
    26
    Expensive
    19
    Learning Difficulty
    17
    Complexity
    13
    Limitations
    12
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Spotfire Analytics features and usability ratings that predict user satisfaction
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
    7.7
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Spotfire
    Company Website
    HQ Location
    N/A
    LinkedIn® Page
    www.linkedin.com
    103 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Spotfire is a visual data science platform designed to help organizations address complex, industry-specific challenges through the effective use of data. This solution offers a range of flexible pack

Users
  • Student
  • Manager
Industries
  • Oil & Energy
  • Information Technology and Services
Market Segment
  • 53% Enterprise
  • 25% Mid-Market
Spotfire Analytics Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
41
Data Visualization
35
Insights
23
Visualization
23
Features
19
Cons
Learning Curve
26
Expensive
19
Learning Difficulty
17
Complexity
13
Limitations
12
Spotfire Analytics features and usability ratings that predict user satisfaction
0.0
No information available
0.0
No information available
0.0
No information available
7.7
Ease of Admin
Average: 8.4
Seller Details
Seller
Spotfire
Company Website
HQ Location
N/A
LinkedIn® Page
www.linkedin.com
103 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Intelligence is a machine learning (ML) powered solution that enables businesses to analyze static and behavioral attributes across multiple data inputs such as phone numbers, IP addresses, and email

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 56% Mid-Market
    • 33% Small-Business
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Telesign Intelligence Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    3
    Customer Support
    2
    Efficiency
    2
    User Interface
    2
    Easy Integrations
    1
    Cons
    Data Management Issues
    1
    Difficult Setup
    1
    Expensive
    1
    Insufficient Learning Resources
    1
    Software Bugs
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Telesign Intelligence features and usability ratings that predict user satisfaction
    8.3
    Application
    Average: 8.5
    8.3
    Managed Service
    Average: 8.2
    8.6
    Natural Language Understanding
    Average: 8.4
    6.7
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Telesign
    Year Founded
    2005
    HQ Location
    Marina del Rey, US
    Twitter
    @TeleSign
    1,884 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    736 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Intelligence is a machine learning (ML) powered solution that enables businesses to analyze static and behavioral attributes across multiple data inputs such as phone numbers, IP addresses, and email

Users
No information available
Industries
No information available
Market Segment
  • 56% Mid-Market
  • 33% Small-Business
Telesign Intelligence Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
3
Customer Support
2
Efficiency
2
User Interface
2
Easy Integrations
1
Cons
Data Management Issues
1
Difficult Setup
1
Expensive
1
Insufficient Learning Resources
1
Software Bugs
1
Telesign Intelligence features and usability ratings that predict user satisfaction
8.3
Application
Average: 8.5
8.3
Managed Service
Average: 8.2
8.6
Natural Language Understanding
Average: 8.4
6.7
Ease of Admin
Average: 8.4
Seller Details
Seller
Telesign
Year Founded
2005
HQ Location
Marina del Rey, US
Twitter
@TeleSign
1,884 Twitter followers
LinkedIn® Page
www.linkedin.com
736 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Wipro HOLMES is an Artificial Intelligence Platform that provide services for the development of digital virtual agents, predictive systems, cognitive process automation, visual computing applications

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 44% Enterprise
    • 33% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Wipro Holmes Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    AI Integration
    2
    Automation
    2
    Data Access
    2
    Efficiency
    2
    Analysis Efficiency
    1
    Cons
    Limited Customization
    2
    Complexity
    1
    Implementation Difficulty
    1
    Steep Learning Curve
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Wipro Holmes features and usability ratings that predict user satisfaction
    7.1
    Application
    Average: 8.5
    7.9
    Managed Service
    Average: 8.2
    7.6
    Natural Language Understanding
    Average: 8.4
    6.1
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Wipro
    Year Founded
    1945
    HQ Location
    Bangalore
    Twitter
    @Wipro
    528,360 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    245,571 employees on LinkedIn®
    Ownership
    WIT
Product Description
How are these determined?Information
This description is provided by the seller.

Wipro HOLMES is an Artificial Intelligence Platform that provide services for the development of digital virtual agents, predictive systems, cognitive process automation, visual computing applications

Users
No information available
Industries
No information available
Market Segment
  • 44% Enterprise
  • 33% Mid-Market
Wipro Holmes Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
AI Integration
2
Automation
2
Data Access
2
Efficiency
2
Analysis Efficiency
1
Cons
Limited Customization
2
Complexity
1
Implementation Difficulty
1
Steep Learning Curve
1
Wipro Holmes features and usability ratings that predict user satisfaction
7.1
Application
Average: 8.5
7.9
Managed Service
Average: 8.2
7.6
Natural Language Understanding
Average: 8.4
6.1
Ease of Admin
Average: 8.4
Seller Details
Seller
Wipro
Year Founded
1945
HQ Location
Bangalore
Twitter
@Wipro
528,360 Twitter followers
LinkedIn® Page
www.linkedin.com
245,571 employees on LinkedIn®
Ownership
WIT
Entry Level Price:$950.00
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Founded in 2018, Pecan is a predictive analytics platform that leverages its pioneering Predictive GenAI to remove barriers to AI adoption, making predictive modeling accessible to all data and busine

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 45% Enterprise
    • 36% Mid-Market
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Pecan features and usability ratings that predict user satisfaction
    8.3
    Application
    Average: 8.5
    8.3
    Managed Service
    Average: 8.2
    10.0
    Natural Language Understanding
    Average: 8.4
    8.3
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Pecan.ai
    Year Founded
    1989
    HQ Location
    US, Israel
    Twitter
    @pecan_ai
    1,137 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    57 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Founded in 2018, Pecan is a predictive analytics platform that leverages its pioneering Predictive GenAI to remove barriers to AI adoption, making predictive modeling accessible to all data and busine

Users
No information available
Industries
No information available
Market Segment
  • 45% Enterprise
  • 36% Mid-Market
Pecan features and usability ratings that predict user satisfaction
8.3
Application
Average: 8.5
8.3
Managed Service
Average: 8.2
10.0
Natural Language Understanding
Average: 8.4
8.3
Ease of Admin
Average: 8.4
Seller Details
Seller
Pecan.ai
Year Founded
1989
HQ Location
US, Israel
Twitter
@pecan_ai
1,137 Twitter followers
LinkedIn® Page
www.linkedin.com
57 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Seldon gets machine learning models to production faster, in the most reliable way. Front-end deployment of models, explainers and canaries means users can deploy ML models and testing can be done in

    Users
    No information available
    Industries
    • Information Technology and Services
    Market Segment
    • 45% Enterprise
    • 36% Small-Business
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Seldon features and usability ratings that predict user satisfaction
    8.3
    Application
    Average: 8.5
    6.7
    Managed Service
    Average: 8.2
    8.3
    Natural Language Understanding
    Average: 8.4
    10.0
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Seldon
    Year Founded
    2014
    HQ Location
    London, GB
    Twitter
    @seldon_io
    2,284 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    96 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Seldon gets machine learning models to production faster, in the most reliable way. Front-end deployment of models, explainers and canaries means users can deploy ML models and testing can be done in

Users
No information available
Industries
  • Information Technology and Services
Market Segment
  • 45% Enterprise
  • 36% Small-Business
Seldon features and usability ratings that predict user satisfaction
8.3
Application
Average: 8.5
6.7
Managed Service
Average: 8.2
8.3
Natural Language Understanding
Average: 8.4
10.0
Ease of Admin
Average: 8.4
Seller Details
Seller
Seldon
Year Founded
2014
HQ Location
London, GB
Twitter
@seldon_io
2,284 Twitter followers
LinkedIn® Page
www.linkedin.com
96 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Labellerr is a computer vision workflow automation platform. It helps ML teams to manage their AI development lifecycle much more efficiently. It helps teams to collaboratively work on data labeling

    Users
    No information available
    Industries
    • Information Technology and Services
    Market Segment
    • 57% Small-Business
    • 38% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Labellerr Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    10
    Annotation Efficiency
    6
    Collaboration
    4
    Customer Support
    4
    Efficiency
    4
    Cons
    Latency Issues
    3
    Performance Issues
    3
    Difficult Setup
    1
    Lacking Features
    1
    Lack of Features
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Labellerr features and usability ratings that predict user satisfaction
    8.3
    Application
    Average: 8.5
    8.3
    Managed Service
    Average: 8.2
    8.3
    Natural Language Understanding
    Average: 8.4
    9.0
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Year Founded
    2017
    HQ Location
    Wilmington, Delaware
    Twitter
    @Labellerr1
    74 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    2 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Labellerr is a computer vision workflow automation platform. It helps ML teams to manage their AI development lifecycle much more efficiently. It helps teams to collaboratively work on data labeling

Users
No information available
Industries
  • Information Technology and Services
Market Segment
  • 57% Small-Business
  • 38% Mid-Market
Labellerr Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
10
Annotation Efficiency
6
Collaboration
4
Customer Support
4
Efficiency
4
Cons
Latency Issues
3
Performance Issues
3
Difficult Setup
1
Lacking Features
1
Lack of Features
1
Labellerr features and usability ratings that predict user satisfaction
8.3
Application
Average: 8.5
8.3
Managed Service
Average: 8.2
8.3
Natural Language Understanding
Average: 8.4
9.0
Ease of Admin
Average: 8.4
Seller Details
Year Founded
2017
HQ Location
Wilmington, Delaware
Twitter
@Labellerr1
74 Twitter followers
LinkedIn® Page
www.linkedin.com
2 employees on LinkedIn®
Entry Level Price:Free
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Neural Designer is a powerful software tool for developing and deploying machine learning models. It provides a user-friendly interface that allows users to build, train, and evaluate neural networks

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 67% Small-Business
    • 33% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Neural Designer Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Coding Ease
    2
    Drag
    2
    Ease of Use
    2
    Intuitive
    2
    Automation
    1
    Cons
    Complex Implementation
    1
    Complexity
    1
    Limited Features
    1
    Limited Model Options
    1
    Limited Options
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Neural Designer features and usability ratings that predict user satisfaction
    8.7
    Application
    Average: 8.5
    7.3
    Managed Service
    Average: 8.2
    5.7
    Natural Language Understanding
    Average: 8.4
    0.0
    No information available
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Artelnics
    Year Founded
    2014
    HQ Location
    Villamayor, Salamanca
    Twitter
    @artelnics
    813 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    10 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Neural Designer is a powerful software tool for developing and deploying machine learning models. It provides a user-friendly interface that allows users to build, train, and evaluate neural networks

Users
No information available
Industries
No information available
Market Segment
  • 67% Small-Business
  • 33% Mid-Market
Neural Designer Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Coding Ease
2
Drag
2
Ease of Use
2
Intuitive
2
Automation
1
Cons
Complex Implementation
1
Complexity
1
Limited Features
1
Limited Model Options
1
Limited Options
1
Neural Designer features and usability ratings that predict user satisfaction
8.7
Application
Average: 8.5
7.3
Managed Service
Average: 8.2
5.7
Natural Language Understanding
Average: 8.4
0.0
No information available
Seller Details
Seller
Artelnics
Year Founded
2014
HQ Location
Villamayor, Salamanca
Twitter
@artelnics
813 Twitter followers
LinkedIn® Page
www.linkedin.com
10 employees on LinkedIn®
(6)3.7 out of 5
View top Consulting Services for Oracle Data Science Cloud Service
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  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Oracle Data Science Cloud Service enables data science teams to easily organize their work, access data and computing resources, and build, train, deploy, and manage models on the Oracle Cloud. The pl

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 50% Mid-Market
    • 33% Small-Business
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Oracle Data Science Cloud Service features and usability ratings that predict user satisfaction
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
    9.4
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Oracle
    Year Founded
    1977
    HQ Location
    Austin, TX
    Twitter
    @Oracle
    822,135 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    204,855 employees on LinkedIn®
    Ownership
    NYSE:ORCL
Product Description
How are these determined?Information
This description is provided by the seller.

Oracle Data Science Cloud Service enables data science teams to easily organize their work, access data and computing resources, and build, train, deploy, and manage models on the Oracle Cloud. The pl

Users
No information available
Industries
No information available
Market Segment
  • 50% Mid-Market
  • 33% Small-Business
Oracle Data Science Cloud Service features and usability ratings that predict user satisfaction
0.0
No information available
0.0
No information available
0.0
No information available
9.4
Ease of Admin
Average: 8.4
Seller Details
Seller
Oracle
Year Founded
1977
HQ Location
Austin, TX
Twitter
@Oracle
822,135 Twitter followers
LinkedIn® Page
www.linkedin.com
204,855 employees on LinkedIn®
Ownership
NYSE:ORCL
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Foundry is a transformative data platform built to help solve the modern enterprise’s most critical problems by creating a central operating system for an organization’s data, while securely integrati

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 42% Enterprise
    • 42% Small-Business
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Palantir Foundry features and usability ratings that predict user satisfaction
    7.1
    Application
    Average: 8.5
    7.5
    Managed Service
    Average: 8.2
    8.9
    Natural Language Understanding
    Average: 8.4
    5.0
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Palantir
    HQ Location
    Denver, US
    Twitter
    @PalantirTech
    301,366 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    4,674 employees on LinkedIn®
    Ownership
    PLTR (NYSE)
Product Description
How are these determined?Information
This description is provided by the seller.

Foundry is a transformative data platform built to help solve the modern enterprise’s most critical problems by creating a central operating system for an organization’s data, while securely integrati

Users
No information available
Industries
No information available
Market Segment
  • 42% Enterprise
  • 42% Small-Business
Palantir Foundry features and usability ratings that predict user satisfaction
7.1
Application
Average: 8.5
7.5
Managed Service
Average: 8.2
8.9
Natural Language Understanding
Average: 8.4
5.0
Ease of Admin
Average: 8.4
Seller Details
Seller
Palantir
HQ Location
Denver, US
Twitter
@PalantirTech
301,366 Twitter followers
LinkedIn® Page
www.linkedin.com
4,674 employees on LinkedIn®
Ownership
PLTR (NYSE)
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Palantir Gotham is a commercially-available, AI-ready operating system that improves and accelerates decisions for operators across roles and all domains. For over a decade, Gotham has surfaced insig

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 40% Mid-Market
    • 30% Enterprise
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Palantir Gotham features and usability ratings that predict user satisfaction
    9.2
    Application
    Average: 8.5
    9.2
    Managed Service
    Average: 8.2
    8.8
    Natural Language Understanding
    Average: 8.4
    0.0
    No information available
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Palantir
    HQ Location
    Denver, US
    Twitter
    @PalantirTech
    301,366 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    4,674 employees on LinkedIn®
    Ownership
    PLTR (NYSE)
Product Description
How are these determined?Information
This description is provided by the seller.

Palantir Gotham is a commercially-available, AI-ready operating system that improves and accelerates decisions for operators across roles and all domains. For over a decade, Gotham has surfaced insig

Users
No information available
Industries
No information available
Market Segment
  • 40% Mid-Market
  • 30% Enterprise
Palantir Gotham features and usability ratings that predict user satisfaction
9.2
Application
Average: 8.5
9.2
Managed Service
Average: 8.2
8.8
Natural Language Understanding
Average: 8.4
0.0
No information available
Seller Details
Seller
Palantir
HQ Location
Denver, US
Twitter
@PalantirTech
301,366 Twitter followers
LinkedIn® Page
www.linkedin.com
4,674 employees on LinkedIn®
Ownership
PLTR (NYSE)
Entry Level Price:Contact Us
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Peak's AI platform optimizes inventories, pricing and customer personalization for businesses of all sizes. The platform provides a broad feature set that enables technical and commercial teams to bu

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 80% Enterprise
    • 20% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Peak Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    AI Integration
    1
    Customizability
    1
    Features
    1
    Inventory Management
    1
    Market Analysis
    1
    Cons
    Complex Automation
    1
    Complexity
    1
    Data Management Issues
    1
    Feature Limitations
    1
    Lacking Features
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Peak features and usability ratings that predict user satisfaction
    8.3
    Application
    Average: 8.5
    6.7
    Managed Service
    Average: 8.2
    6.7
    Natural Language Understanding
    Average: 8.4
    10.0
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Peak
    Year Founded
    2014
    HQ Location
    Manchester, Greater Manchester
    Twitter
    @Peak_HQ
    6,701 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    324 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Peak's AI platform optimizes inventories, pricing and customer personalization for businesses of all sizes. The platform provides a broad feature set that enables technical and commercial teams to bu

Users
No information available
Industries
No information available
Market Segment
  • 80% Enterprise
  • 20% Mid-Market
Peak Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
AI Integration
1
Customizability
1
Features
1
Inventory Management
1
Market Analysis
1
Cons
Complex Automation
1
Complexity
1
Data Management Issues
1
Feature Limitations
1
Lacking Features
1
Peak features and usability ratings that predict user satisfaction
8.3
Application
Average: 8.5
6.7
Managed Service
Average: 8.2
6.7
Natural Language Understanding
Average: 8.4
10.0
Ease of Admin
Average: 8.4
Seller Details
Seller
Peak
Year Founded
2014
HQ Location
Manchester, Greater Manchester
Twitter
@Peak_HQ
6,701 Twitter followers
LinkedIn® Page
www.linkedin.com
324 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Pyramid is a tier one, enterprise-grade Analytics Operating System that scales from single-user self-service analytics to thousand-user centralized deployments—covering simple-but-effective data visua

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 47% Enterprise
    • 35% Small-Business
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Pyramid features and usability ratings that predict user satisfaction
    8.3
    Application
    Average: 8.5
    10.0
    Managed Service
    Average: 8.2
    10.0
    Natural Language Understanding
    Average: 8.4
    9.0
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Year Founded
    2008
    HQ Location
    Amsterdam
    Twitter
    @PyramidAnalytic
    10,416 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    159 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Pyramid is a tier one, enterprise-grade Analytics Operating System that scales from single-user self-service analytics to thousand-user centralized deployments—covering simple-but-effective data visua

Users
No information available
Industries
No information available
Market Segment
  • 47% Enterprise
  • 35% Small-Business
Pyramid features and usability ratings that predict user satisfaction
8.3
Application
Average: 8.5
10.0
Managed Service
Average: 8.2
10.0
Natural Language Understanding
Average: 8.4
9.0
Ease of Admin
Average: 8.4
Seller Details
Year Founded
2008
HQ Location
Amsterdam
Twitter
@PyramidAnalytic
10,416 Twitter followers
LinkedIn® Page
www.linkedin.com
159 employees on LinkedIn®
(517)4.3 out of 5
View top Consulting Services for SAP HANA Cloud
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  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    SAP HANA Cloud is a modern database-as-a-service (DBaaS) powering the next generation of intelligent data applications. SAP HANA Cloud offers a competitive edge by incorporating advanced machine learn

    Users
    • Consultant
    • SAP Consultant
    Industries
    • Information Technology and Services
    • Computer Software
    Market Segment
    • 64% Enterprise
    • 23% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • SAP HANA Cloud Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    13
    Cloud Computing
    10
    Easy Integrations
    10
    Features
    9
    Integrations
    9
    Cons
    Expensive
    9
    Complexity
    8
    Learning Curve
    8
    Complex Implementation
    6
    Learning Difficulty
    6
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • SAP HANA Cloud features and usability ratings that predict user satisfaction
    10.0
    Application
    Average: 8.5
    9.4
    Managed Service
    Average: 8.2
    10.0
    Natural Language Understanding
    Average: 8.4
    7.8
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    SAP
    Year Founded
    1972
    HQ Location
    Walldorf
    Twitter
    @SAP
    299,880 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    129,051 employees on LinkedIn®
    Ownership
    NYSE:SAP
Product Description
How are these determined?Information
This description is provided by the seller.

SAP HANA Cloud is a modern database-as-a-service (DBaaS) powering the next generation of intelligent data applications. SAP HANA Cloud offers a competitive edge by incorporating advanced machine learn

Users
  • Consultant
  • SAP Consultant
Industries
  • Information Technology and Services
  • Computer Software
Market Segment
  • 64% Enterprise
  • 23% Mid-Market
SAP HANA Cloud Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
13
Cloud Computing
10
Easy Integrations
10
Features
9
Integrations
9
Cons
Expensive
9
Complexity
8
Learning Curve
8
Complex Implementation
6
Learning Difficulty
6
SAP HANA Cloud features and usability ratings that predict user satisfaction
10.0
Application
Average: 8.5
9.4
Managed Service
Average: 8.2
10.0
Natural Language Understanding
Average: 8.4
7.8
Ease of Admin
Average: 8.4
Seller Details
Seller
SAP
Year Founded
1972
HQ Location
Walldorf
Twitter
@SAP
299,880 Twitter followers
LinkedIn® Page
www.linkedin.com
129,051 employees on LinkedIn®
Ownership
NYSE:SAP
Entry Level Price:350 monthly
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Analyze data, build data models, and automate workflows with the power of AI, all without spending a second on setup.

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 75% Small-Business
    • 25% Mid-Market
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Datagran features and usability ratings that predict user satisfaction
    8.3
    Application
    Average: 8.5
    8.3
    Managed Service
    Average: 8.2
    6.7
    Natural Language Understanding
    Average: 8.4
    0.0
    No information available
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Datagran
    Year Founded
    2017
    HQ Location
    New York, NY
    Twitter
    @DataGran
    3,003 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    19 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Analyze data, build data models, and automate workflows with the power of AI, all without spending a second on setup.

Users
No information available
Industries
No information available
Market Segment
  • 75% Small-Business
  • 25% Mid-Market
Datagran features and usability ratings that predict user satisfaction
8.3
Application
Average: 8.5
8.3
Managed Service
Average: 8.2
6.7
Natural Language Understanding
Average: 8.4
0.0
No information available
Seller Details
Seller
Datagran
Year Founded
2017
HQ Location
New York, NY
Twitter
@DataGran
3,003 Twitter followers
LinkedIn® Page
www.linkedin.com
19 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Edge Impulse is an end-to-end platform for edge AI application development. We enable developers to use their own sensor, audio and vision data to train AI models for classification, regression an

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 64% Small-Business
    • 36% Enterprise
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Edge Impulse Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Capabilities
    2
    Ease of Use
    2
    Features
    1
    Flexibility
    1
    Machine Learning
    1
    Cons
    Lack of Guidance
    1
    Lack of Tools
    1
    Limited Customization
    1
    Missing Features
    1
    Model Limitations
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Edge Impulse features and usability ratings that predict user satisfaction
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
    10.0
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Qualcomm
    Year Founded
    1985
    HQ Location
    San Diego, CA
    Twitter
    @Qualcomm
    444,394 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    46,280 employees on LinkedIn®
    Ownership
    NASDAQ:QCOM
Product Description
How are these determined?Information
This description is provided by the seller.

Edge Impulse is an end-to-end platform for edge AI application development. We enable developers to use their own sensor, audio and vision data to train AI models for classification, regression an

Users
No information available
Industries
No information available
Market Segment
  • 64% Small-Business
  • 36% Enterprise
Edge Impulse Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Capabilities
2
Ease of Use
2
Features
1
Flexibility
1
Machine Learning
1
Cons
Lack of Guidance
1
Lack of Tools
1
Limited Customization
1
Missing Features
1
Model Limitations
1
Edge Impulse features and usability ratings that predict user satisfaction
0.0
No information available
0.0
No information available
0.0
No information available
10.0
Ease of Admin
Average: 8.4
Seller Details
Seller
Qualcomm
Year Founded
1985
HQ Location
San Diego, CA
Twitter
@Qualcomm
444,394 Twitter followers
LinkedIn® Page
www.linkedin.com
46,280 employees on LinkedIn®
Ownership
NASDAQ:QCOM
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    H2O Driverless AI employs the techniques of expert data scientists in an easy to use application that helps scale your data science efforts. Driverless AI empowers data scientists to work on projects

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 50% Small-Business
    • 25% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • H2O Driverless AI Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    2
    Coding Ease
    1
    Machine Learning
    1
    Problem Solving
    1
    Cons
    Inadequate Tools
    1
    Limited Features
    1
    UX Improvement
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • H2O Driverless AI features and usability ratings that predict user satisfaction
    6.7
    Application
    Average: 8.5
    6.7
    Managed Service
    Average: 8.2
    8.3
    Natural Language Understanding
    Average: 8.4
    0.0
    No information available
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    H2O.ai
    Year Founded
    2012
    HQ Location
    Mountain View, CA
    Twitter
    @h2oai
    25,347 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    330 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

H2O Driverless AI employs the techniques of expert data scientists in an easy to use application that helps scale your data science efforts. Driverless AI empowers data scientists to work on projects

Users
No information available
Industries
No information available
Market Segment
  • 50% Small-Business
  • 25% Mid-Market
H2O Driverless AI Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
2
Coding Ease
1
Machine Learning
1
Problem Solving
1
Cons
Inadequate Tools
1
Limited Features
1
UX Improvement
1
H2O Driverless AI features and usability ratings that predict user satisfaction
6.7
Application
Average: 8.5
6.7
Managed Service
Average: 8.2
8.3
Natural Language Understanding
Average: 8.4
0.0
No information available
Seller Details
Seller
H2O.ai
Year Founded
2012
HQ Location
Mountain View, CA
Twitter
@h2oai
25,347 Twitter followers
LinkedIn® Page
www.linkedin.com
330 employees on LinkedIn®
Entry Level Price:Free
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    JADBio makes it easy and affordable for health-data analysts and life-science professionals to use data science to discover knowledge while reducing time and effort by combining a robust end-to-end ma

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 60% Mid-Market
    • 40% Small-Business
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • JADBio AutoML features and usability ratings that predict user satisfaction
    10.0
    Application
    Average: 8.5
    7.5
    Managed Service
    Average: 8.2
    10.0
    Natural Language Understanding
    Average: 8.4
    10.0
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    GnosisDA
    Year Founded
    2013
    HQ Location
    Los Angeles, California
    Twitter
    @WeAreJADBio
    348 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    16 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

JADBio makes it easy and affordable for health-data analysts and life-science professionals to use data science to discover knowledge while reducing time and effort by combining a robust end-to-end ma

Users
No information available
Industries
No information available
Market Segment
  • 60% Mid-Market
  • 40% Small-Business
JADBio AutoML features and usability ratings that predict user satisfaction
10.0
Application
Average: 8.5
7.5
Managed Service
Average: 8.2
10.0
Natural Language Understanding
Average: 8.4
10.0
Ease of Admin
Average: 8.4
Seller Details
Seller
GnosisDA
Year Founded
2013
HQ Location
Los Angeles, California
Twitter
@WeAreJADBio
348 Twitter followers
LinkedIn® Page
www.linkedin.com
16 employees on LinkedIn®
(46)4.5 out of 5
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  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Labelbox is the leading data-centric AI platform for building intelligent applications. Teams looking to capitalize on the latest advances in generative AI and LLMs use the Labelbox platform to inject

    Users
    No information available
    Industries
    • Computer Software
    • Information Technology and Services
    Market Segment
    • 48% Small-Business
    • 39% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Labelbox Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    9
    Data Labeling
    8
    Features
    8
    Easy Integrations
    7
    AI Capabilities
    5
    Cons
    Slow Performance
    3
    Slow Processing
    3
    Difficult Learning
    2
    Expensive
    2
    Buggy Performance
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Labelbox features and usability ratings that predict user satisfaction
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
    9.0
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Labelbox
    Year Founded
    2018
    HQ Location
    San Francisco, California
    Twitter
    @labelbox
    2,732 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    282 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Labelbox is the leading data-centric AI platform for building intelligent applications. Teams looking to capitalize on the latest advances in generative AI and LLMs use the Labelbox platform to inject

Users
No information available
Industries
  • Computer Software
  • Information Technology and Services
Market Segment
  • 48% Small-Business
  • 39% Mid-Market
Labelbox Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
9
Data Labeling
8
Features
8
Easy Integrations
7
AI Capabilities
5
Cons
Slow Performance
3
Slow Processing
3
Difficult Learning
2
Expensive
2
Buggy Performance
1
Labelbox features and usability ratings that predict user satisfaction
0.0
No information available
0.0
No information available
0.0
No information available
9.0
Ease of Admin
Average: 8.4
Seller Details
Seller
Labelbox
Year Founded
2018
HQ Location
San Francisco, California
Twitter
@labelbox
2,732 Twitter followers
LinkedIn® Page
www.linkedin.com
282 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Turn ideas into AI, Lightning fast Code together. Prototype. Train. Deploy. Host AI web apps. From your browser - with zero setup

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 75% Small-Business
    • 25% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Lightning AI Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    AI Integration
    3
    Automation
    2
    Coding Ease
    2
    Ease of Use
    2
    Easy Integrations
    2
    Cons
    Cost
    1
    Data Management Issues
    1
    Difficult Setup
    1
    Expensive
    1
    Implementation Difficulty
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Lightning AI features and usability ratings that predict user satisfaction
    7.9
    Application
    Average: 8.5
    8.3
    Managed Service
    Average: 8.2
    6.3
    Natural Language Understanding
    Average: 8.4
    0.0
    No information available
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    LinkedIn® Page
    www.linkedin.com
Product Description
How are these determined?Information
This description is provided by the seller.

Turn ideas into AI, Lightning fast Code together. Prototype. Train. Deploy. Host AI web apps. From your browser - with zero setup

Users
No information available
Industries
No information available
Market Segment
  • 75% Small-Business
  • 25% Mid-Market
Lightning AI Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
AI Integration
3
Automation
2
Coding Ease
2
Ease of Use
2
Easy Integrations
2
Cons
Cost
1
Data Management Issues
1
Difficult Setup
1
Expensive
1
Implementation Difficulty
1
Lightning AI features and usability ratings that predict user satisfaction
7.9
Application
Average: 8.5
8.3
Managed Service
Average: 8.2
6.3
Natural Language Understanding
Average: 8.4
0.0
No information available
Seller Details
LinkedIn® Page
www.linkedin.com
Entry Level Price:Free
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Loxo is the #1 Talent Intelligence Platform and global leader in recruiting software. The legacy ATS as we know it will not exist in 5 years. Loxo was designed to manage the full recruitment life c

    Users
    • Founder
    • Managing Director
    Industries
    • Staffing and Recruiting
    • Information Technology and Services
    Market Segment
    • 96% Small-Business
    • 3% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Loxo Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    37
    User Interface
    30
    Time-saving
    25
    Features
    23
    Customer Support
    21
    Cons
    Limited Customization
    9
    Integration Issues
    8
    Email Functionality Issues
    7
    Email Issues
    7
    Missing Features
    6
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Loxo features and usability ratings that predict user satisfaction
    6.7
    Application
    Average: 8.5
    6.7
    Managed Service
    Average: 8.2
    6.7
    Natural Language Understanding
    Average: 8.4
    9.1
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Loxo
    Company Website
    Year Founded
    2012
    HQ Location
    Austin, Texas
    Twitter
    @loxo
    72 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    90 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Loxo is the #1 Talent Intelligence Platform and global leader in recruiting software. The legacy ATS as we know it will not exist in 5 years. Loxo was designed to manage the full recruitment life c

Users
  • Founder
  • Managing Director
Industries
  • Staffing and Recruiting
  • Information Technology and Services
Market Segment
  • 96% Small-Business
  • 3% Mid-Market
Loxo Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
37
User Interface
30
Time-saving
25
Features
23
Customer Support
21
Cons
Limited Customization
9
Integration Issues
8
Email Functionality Issues
7
Email Issues
7
Missing Features
6
Loxo features and usability ratings that predict user satisfaction
6.7
Application
Average: 8.5
6.7
Managed Service
Average: 8.2
6.7
Natural Language Understanding
Average: 8.4
9.1
Ease of Admin
Average: 8.4
Seller Details
Seller
Loxo
Company Website
Year Founded
2012
HQ Location
Austin, Texas
Twitter
@loxo
72 Twitter followers
LinkedIn® Page
www.linkedin.com
90 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Polyture combines all the major elements of the modern data stack into one application that is intuitive and free to use. The platform consists of four modules; Warehousing, Dataflows, Automated Machi

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 100% Small-Business
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Polyture features and usability ratings that predict user satisfaction
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Polyture
    HQ Location
    Santa Clara, CA
    Twitter
    @PolytureData
    26 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    1 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Polyture combines all the major elements of the modern data stack into one application that is intuitive and free to use. The platform consists of four modules; Warehousing, Dataflows, Automated Machi

Users
No information available
Industries
No information available
Market Segment
  • 100% Small-Business
Polyture features and usability ratings that predict user satisfaction
0.0
No information available
0.0
No information available
0.0
No information available
0.0
No information available
Seller Details
Seller
Polyture
HQ Location
Santa Clara, CA
Twitter
@PolytureData
26 Twitter followers
LinkedIn® Page
www.linkedin.com
1 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Rainbird is an AI-powered automation platform. Our technology turns human knowledge into explainable machine intelligence. Scale-up your business expertise using the Rainbird platform. Book a free

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 75% Mid-Market
    • 25% Enterprise
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Rainbird Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    AI Integration
    1
    Automation
    1
    Cloud Computing
    1
    Ease of Use
    1
    Easy Integrations
    1
    Cons
    Complexity
    1
    Difficult Learning
    1
    Initial Difficulties
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Rainbird features and usability ratings that predict user satisfaction
    7.8
    Application
    Average: 8.5
    7.8
    Managed Service
    Average: 8.2
    8.3
    Natural Language Understanding
    Average: 8.4
    8.3
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Year Founded
    2013
    HQ Location
    Norwich, GB
    Twitter
    @RainBirdAI
    3,090 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    42 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Rainbird is an AI-powered automation platform. Our technology turns human knowledge into explainable machine intelligence. Scale-up your business expertise using the Rainbird platform. Book a free

Users
No information available
Industries
No information available
Market Segment
  • 75% Mid-Market
  • 25% Enterprise
Rainbird Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
AI Integration
1
Automation
1
Cloud Computing
1
Ease of Use
1
Easy Integrations
1
Cons
Complexity
1
Difficult Learning
1
Initial Difficulties
1
Rainbird features and usability ratings that predict user satisfaction
7.8
Application
Average: 8.5
7.8
Managed Service
Average: 8.2
8.3
Natural Language Understanding
Average: 8.4
8.3
Ease of Admin
Average: 8.4
Seller Details
Year Founded
2013
HQ Location
Norwich, GB
Twitter
@RainBirdAI
3,090 Twitter followers
LinkedIn® Page
www.linkedin.com
42 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    RocketML is a Super Fast Computational engine for Machine Learning. Built for scientists and engineers, RocketML scales Machine Learning models with no limits. If you have a large data science/analyti

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 100% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • RocketML Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    3
    Efficiency
    3
    Automation
    2
    Fast Processing
    2
    Flexibility
    2
    Cons
    Complex Coding
    1
    Complexity
    1
    Cost
    1
    Expensive
    1
    Implementation Difficulty
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • RocketML features and usability ratings that predict user satisfaction
    8.8
    Application
    Average: 8.5
    7.9
    Managed Service
    Average: 8.2
    8.8
    Natural Language Understanding
    Average: 8.4
    7.8
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    RocketML
    Year Founded
    2017
    HQ Location
    Beaverton, US
    LinkedIn® Page
    www.linkedin.com
    9 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

RocketML is a Super Fast Computational engine for Machine Learning. Built for scientists and engineers, RocketML scales Machine Learning models with no limits. If you have a large data science/analyti

Users
No information available
Industries
No information available
Market Segment
  • 100% Mid-Market
RocketML Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
3
Efficiency
3
Automation
2
Fast Processing
2
Flexibility
2
Cons
Complex Coding
1
Complexity
1
Cost
1
Expensive
1
Implementation Difficulty
1
RocketML features and usability ratings that predict user satisfaction
8.8
Application
Average: 8.5
7.9
Managed Service
Average: 8.2
8.8
Natural Language Understanding
Average: 8.4
7.8
Ease of Admin
Average: 8.4
Seller Details
Seller
RocketML
Year Founded
2017
HQ Location
Beaverton, US
LinkedIn® Page
www.linkedin.com
9 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    At Teradata, we believe that people thrive when empowered with better information. That’s why we built the most complete cloud analytics and data platform for AI. By delivering harmonized data, trust

    Users
    • Data Engineer
    • Software Engineer
    Industries
    • Information Technology and Services
    • Financial Services
    Market Segment
    • 70% Enterprise
    • 21% Mid-Market
    User Sentiment
    How are these determined?Information
    These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
    • Teradata Vantage is a platform that supports complex data workloads at scale, allowing for large-scale data analysis from different sources and the development of business models.
    • Reviewers appreciate its ability to handle large volumes of data quickly, its stability for reliable and continuous operations, and its integration capabilities with multiple sources for comprehensive analysis.
    • Reviewers noted that some advanced features can be unintuitive and require a steep learning curve, the user interface feels outdated, and initial configuration or integration with cloud services can be complex.
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Teradata Vantage Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    33
    Performance
    28
    Analytics
    26
    Scalability
    24
    Data Analytics
    22
    Cons
    Learning Curve
    16
    Expensive
    15
    Complexity
    12
    Not User-Friendly
    10
    Poor UI Design
    10
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Teradata Vantage features and usability ratings that predict user satisfaction
    8.3
    Application
    Average: 8.5
    8.3
    Managed Service
    Average: 8.2
    7.8
    Natural Language Understanding
    Average: 8.4
    8.0
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Teradata
    Company Website
    Year Founded
    1979
    HQ Location
    San Diego, CA
    Twitter
    @Teradata
    93,089 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    10,256 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

At Teradata, we believe that people thrive when empowered with better information. That’s why we built the most complete cloud analytics and data platform for AI. By delivering harmonized data, trust

Users
  • Data Engineer
  • Software Engineer
Industries
  • Information Technology and Services
  • Financial Services
Market Segment
  • 70% Enterprise
  • 21% Mid-Market
User Sentiment
How are these determined?Information
These insights, currently in beta, are compiled from user reviews and grouped to display a high-level overview of the software.
  • Teradata Vantage is a platform that supports complex data workloads at scale, allowing for large-scale data analysis from different sources and the development of business models.
  • Reviewers appreciate its ability to handle large volumes of data quickly, its stability for reliable and continuous operations, and its integration capabilities with multiple sources for comprehensive analysis.
  • Reviewers noted that some advanced features can be unintuitive and require a steep learning curve, the user interface feels outdated, and initial configuration or integration with cloud services can be complex.
Teradata Vantage Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
33
Performance
28
Analytics
26
Scalability
24
Data Analytics
22
Cons
Learning Curve
16
Expensive
15
Complexity
12
Not User-Friendly
10
Poor UI Design
10
Teradata Vantage features and usability ratings that predict user satisfaction
8.3
Application
Average: 8.5
8.3
Managed Service
Average: 8.2
7.8
Natural Language Understanding
Average: 8.4
8.0
Ease of Admin
Average: 8.4
Seller Details
Seller
Teradata
Company Website
Year Founded
1979
HQ Location
San Diego, CA
Twitter
@Teradata
93,089 Twitter followers
LinkedIn® Page
www.linkedin.com
10,256 employees on LinkedIn®
(3)4.0 out of 5
View top Consulting Services for Azure AI Studio
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  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    A unified platform for developing and deploying generative AI apps responsibly

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 67% Enterprise
    • 33% Small-Business
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Azure AI Studio Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    AI Integration
    2
    Data Access
    1
    Integrated Platform
    1
    Model Variety
    1
    User Interface
    1
    Cons
    Cost
    1
    Expensive
    1
    Outdated Content
    1
    Time-Consumption
    1
    UX Improvement
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Azure AI Studio features and usability ratings that predict user satisfaction
    8.3
    Application
    Average: 8.5
    9.4
    Managed Service
    Average: 8.2
    9.2
    Natural Language Understanding
    Average: 8.4
    0.0
    No information available
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Microsoft
    Year Founded
    1975
    HQ Location
    Redmond, Washington
    Twitter
    @microsoft
    14,002,464 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    237,523 employees on LinkedIn®
    Ownership
    MSFT
Product Description
How are these determined?Information
This description is provided by the seller.

A unified platform for developing and deploying generative AI apps responsibly

Users
No information available
Industries
No information available
Market Segment
  • 67% Enterprise
  • 33% Small-Business
Azure AI Studio Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
AI Integration
2
Data Access
1
Integrated Platform
1
Model Variety
1
User Interface
1
Cons
Cost
1
Expensive
1
Outdated Content
1
Time-Consumption
1
UX Improvement
1
Azure AI Studio features and usability ratings that predict user satisfaction
8.3
Application
Average: 8.5
9.4
Managed Service
Average: 8.2
9.2
Natural Language Understanding
Average: 8.4
0.0
No information available
Seller Details
Seller
Microsoft
Year Founded
1975
HQ Location
Redmond, Washington
Twitter
@microsoft
14,002,464 Twitter followers
LinkedIn® Page
www.linkedin.com
237,523 employees on LinkedIn®
Ownership
MSFT
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Civis Customer Science is a single solution that combines the best of well-known technology categories like CDPs, DMPs, identity graphs, etc. at unprecedented scale, with leading-edge data science for

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 50% Small-Business
    • 25% Enterprise
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Civis features and usability ratings that predict user satisfaction
    10.0
    Application
    Average: 8.5
    10.0
    Managed Service
    Average: 8.2
    10.0
    Natural Language Understanding
    Average: 8.4
    0.0
    No information available
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Year Founded
    2013
    HQ Location
    Chicago, IL
    Twitter
    @CivisAnalytics
    8,584 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    150 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Civis Customer Science is a single solution that combines the best of well-known technology categories like CDPs, DMPs, identity graphs, etc. at unprecedented scale, with leading-edge data science for

Users
No information available
Industries
No information available
Market Segment
  • 50% Small-Business
  • 25% Enterprise
Civis features and usability ratings that predict user satisfaction
10.0
Application
Average: 8.5
10.0
Managed Service
Average: 8.2
10.0
Natural Language Understanding
Average: 8.4
0.0
No information available
Seller Details
Year Founded
2013
HQ Location
Chicago, IL
Twitter
@CivisAnalytics
8,584 Twitter followers
LinkedIn® Page
www.linkedin.com
150 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Code Ocean is a Computational Science platform for life science R&D teams who want a fast and efficient way to start, scale, collaborate, and reproduce computational research. It helps Computation

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 50% Mid-Market
    • 50% Small-Business
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Code Ocean Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    3
    Coding Ease
    2
    Efficiency
    2
    Cloud Computing
    1
    Cloud Storage
    1
    Cons
    Expensive
    1
    Transferring Issues
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Code Ocean features and usability ratings that predict user satisfaction
    10.0
    Application
    Average: 8.5
    10.0
    Managed Service
    Average: 8.2
    7.5
    Natural Language Understanding
    Average: 8.4
    7.8
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Year Founded
    2016
    HQ Location
    New York, US
    LinkedIn® Page
    www.linkedin.com
    51 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Code Ocean is a Computational Science platform for life science R&D teams who want a fast and efficient way to start, scale, collaborate, and reproduce computational research. It helps Computation

Users
No information available
Industries
No information available
Market Segment
  • 50% Mid-Market
  • 50% Small-Business
Code Ocean Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
3
Coding Ease
2
Efficiency
2
Cloud Computing
1
Cloud Storage
1
Cons
Expensive
1
Transferring Issues
1
Code Ocean features and usability ratings that predict user satisfaction
10.0
Application
Average: 8.5
10.0
Managed Service
Average: 8.2
7.5
Natural Language Understanding
Average: 8.4
7.8
Ease of Admin
Average: 8.4
Seller Details
Year Founded
2016
HQ Location
New York, US
LinkedIn® Page
www.linkedin.com
51 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Dynam.AI’s suite of artificial intelligence services, including advanced deep learning and computer vision algorithms and models, are easy to use and are custom-tailored to each individual client’s ne

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 67% Mid-Market
    • 33% Small-Business
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Dynam.AI End-to-End AI Solutions Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Efficiency
    2
    AI Integration
    1
    Ease of Use
    1
    Easy Integrations
    1
    Innovation
    1
    Cons
    Data Management Issues
    1
    Difficult Setup
    1
    Expensive
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Dynam.AI End-to-End AI Solutions features and usability ratings that predict user satisfaction
    7.2
    Application
    Average: 8.5
    4.4
    Managed Service
    Average: 8.2
    7.8
    Natural Language Understanding
    Average: 8.4
    6.7
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Dynam.AI
    Year Founded
    2019
    HQ Location
    San Diego, US
    LinkedIn® Page
    www.linkedin.com
    4 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Dynam.AI’s suite of artificial intelligence services, including advanced deep learning and computer vision algorithms and models, are easy to use and are custom-tailored to each individual client’s ne

Users
No information available
Industries
No information available
Market Segment
  • 67% Mid-Market
  • 33% Small-Business
Dynam.AI End-to-End AI Solutions Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Efficiency
2
AI Integration
1
Ease of Use
1
Easy Integrations
1
Innovation
1
Cons
Data Management Issues
1
Difficult Setup
1
Expensive
1
Dynam.AI End-to-End AI Solutions features and usability ratings that predict user satisfaction
7.2
Application
Average: 8.5
4.4
Managed Service
Average: 8.2
7.8
Natural Language Understanding
Average: 8.4
6.7
Ease of Admin
Average: 8.4
Seller Details
Seller
Dynam.AI
Year Founded
2019
HQ Location
San Diego, US
LinkedIn® Page
www.linkedin.com
4 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Liner is a free tool that lets you train your ML models easily. It takes your training data and gives you an easy-to-integrate ML model. No coding or expertise in machine learning required.

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 33% Enterprise
    • 33% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Liner.AI Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    2
    Easy Integrations
    1
    Intuitive
    1
    Training
    1
    User Interface
    1
    Cons
    Expensive
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Liner.AI features and usability ratings that predict user satisfaction
    6.7
    Application
    Average: 8.5
    6.7
    Managed Service
    Average: 8.2
    6.7
    Natural Language Understanding
    Average: 8.4
    8.3
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Liner.AI
    HQ Location
    N/A
    LinkedIn® Page
    www.linkedin.com
    1 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Liner is a free tool that lets you train your ML models easily. It takes your training data and gives you an easy-to-integrate ML model. No coding or expertise in machine learning required.

Users
No information available
Industries
No information available
Market Segment
  • 33% Enterprise
  • 33% Mid-Market
Liner.AI Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
2
Easy Integrations
1
Intuitive
1
Training
1
User Interface
1
Cons
Expensive
1
Liner.AI features and usability ratings that predict user satisfaction
6.7
Application
Average: 8.5
6.7
Managed Service
Average: 8.2
6.7
Natural Language Understanding
Average: 8.4
8.3
Ease of Admin
Average: 8.4
Seller Details
Seller
Liner.AI
HQ Location
N/A
LinkedIn® Page
www.linkedin.com
1 employees on LinkedIn®
(3)4.8 out of 5
View top Consulting Services for Machine Learning Platform for AI
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  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Machine Learning Platform For AI provides end-to-end machine learning services, including data processing, feature engineering, model training, model prediction, and model evaluation. Machine Learning

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 67% Small-Business
    • 33% Enterprise
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Machine Learning Platform for AI Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    AI Integration
    1
    Training
    1
    Cons
    Difficult Learning
    1
    Steep Learning Curve
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Machine Learning Platform for AI features and usability ratings that predict user satisfaction
    10.0
    Application
    Average: 8.5
    10.0
    Managed Service
    Average: 8.2
    10.0
    Natural Language Understanding
    Average: 8.4
    10.0
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Alibaba
    HQ Location
    Hangzhou
    Twitter
    @alibaba_cloud
    1,059,398 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    4,580 employees on LinkedIn®
    Ownership
    BABA
    Total Revenue (USD mm)
    $509,711
Product Description
How are these determined?Information
This description is provided by the seller.

Machine Learning Platform For AI provides end-to-end machine learning services, including data processing, feature engineering, model training, model prediction, and model evaluation. Machine Learning

Users
No information available
Industries
No information available
Market Segment
  • 67% Small-Business
  • 33% Enterprise
Machine Learning Platform for AI Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
AI Integration
1
Training
1
Cons
Difficult Learning
1
Steep Learning Curve
1
Machine Learning Platform for AI features and usability ratings that predict user satisfaction
10.0
Application
Average: 8.5
10.0
Managed Service
Average: 8.2
10.0
Natural Language Understanding
Average: 8.4
10.0
Ease of Admin
Average: 8.4
Seller Details
Seller
Alibaba
HQ Location
Hangzhou
Twitter
@alibaba_cloud
1,059,398 Twitter followers
LinkedIn® Page
www.linkedin.com
4,580 employees on LinkedIn®
Ownership
BABA
Total Revenue (USD mm)
$509,711
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Node is the first AutoML solution designed for platforms that leverage people and company data. With Node, teams can rapidly create and deploy AI-powered solutions for CRM, marketing automation, custo

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 67% Mid-Market
    • 33% Enterprise
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Node AutoML Platform Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Coding Ease
    2
    Ease of Use
    2
    AI Integration
    1
    Automation
    1
    Data Access
    1
    Cons
    Data Management Issues
    1
    Limited Customization
    1
    Limited Features
    1
    Limited Model Options
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Node AutoML Platform features and usability ratings that predict user satisfaction
    8.9
    Application
    Average: 8.5
    7.8
    Managed Service
    Average: 8.2
    7.8
    Natural Language Understanding
    Average: 8.4
    10.0
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Node.io
    Year Founded
    2014
    HQ Location
    San Francisco, CA
    Twitter
    @nodeio
    1,989 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    35 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Node is the first AutoML solution designed for platforms that leverage people and company data. With Node, teams can rapidly create and deploy AI-powered solutions for CRM, marketing automation, custo

Users
No information available
Industries
No information available
Market Segment
  • 67% Mid-Market
  • 33% Enterprise
Node AutoML Platform Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Coding Ease
2
Ease of Use
2
AI Integration
1
Automation
1
Data Access
1
Cons
Data Management Issues
1
Limited Customization
1
Limited Features
1
Limited Model Options
1
Node AutoML Platform features and usability ratings that predict user satisfaction
8.9
Application
Average: 8.5
7.8
Managed Service
Average: 8.2
7.8
Natural Language Understanding
Average: 8.4
10.0
Ease of Admin
Average: 8.4
Seller Details
Seller
Node.io
Year Founded
2014
HQ Location
San Francisco, CA
Twitter
@nodeio
1,989 Twitter followers
LinkedIn® Page
www.linkedin.com
35 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    A/B Testing is Dead. Make the leap from A/B to AI. OfferFit’s Automated Experimentation Platform is the fastest, most scalable way to accelerate testing and learning. Automatically discover the right

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 71% Enterprise
    • 29% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • OfferFit by Braze Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Collaboration
    6
    Customer Support
    6
    AI Technology
    5
    Ease of Use
    5
    Helpful
    5
    Cons
    Learning Curve
    3
    Difficult Learning
    2
    Implementation Difficulty
    2
    Time-Consumption
    2
    Campaign Management Issues
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • OfferFit by Braze features and usability ratings that predict user satisfaction
    10.0
    Application
    Average: 8.5
    10.0
    Managed Service
    Average: 8.2
    10.0
    Natural Language Understanding
    Average: 8.4
    8.3
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Braze
    Company Website
    Year Founded
    2011
    HQ Location
    New York
    Twitter
    @Braze
    16,345 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    1,915 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

A/B Testing is Dead. Make the leap from A/B to AI. OfferFit’s Automated Experimentation Platform is the fastest, most scalable way to accelerate testing and learning. Automatically discover the right

Users
No information available
Industries
No information available
Market Segment
  • 71% Enterprise
  • 29% Mid-Market
OfferFit by Braze Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Collaboration
6
Customer Support
6
AI Technology
5
Ease of Use
5
Helpful
5
Cons
Learning Curve
3
Difficult Learning
2
Implementation Difficulty
2
Time-Consumption
2
Campaign Management Issues
1
OfferFit by Braze features and usability ratings that predict user satisfaction
10.0
Application
Average: 8.5
10.0
Managed Service
Average: 8.2
10.0
Natural Language Understanding
Average: 8.4
8.3
Ease of Admin
Average: 8.4
Seller Details
Seller
Braze
Company Website
Year Founded
2011
HQ Location
New York
Twitter
@Braze
16,345 Twitter followers
LinkedIn® Page
www.linkedin.com
1,915 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    OpenText Magellan is a flexible AI and Analytics platform that combines open source machine learning with advanced analytics, enterprise-grade BI, and capabilities to acquire, merge, manage and analyz

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 40% Mid-Market
    • 40% Enterprise
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • OpenText Data Discovery (Magellan) features and usability ratings that predict user satisfaction
    8.3
    Application
    Average: 8.5
    8.3
    Managed Service
    Average: 8.2
    8.3
    Natural Language Understanding
    Average: 8.4
    6.1
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    OpenText
    Year Founded
    1991
    HQ Location
    Waterloo, ON
    Twitter
    @OpenText
    21,716 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    22,403 employees on LinkedIn®
    Ownership
    NASDAQ:OTEX
Product Description
How are these determined?Information
This description is provided by the seller.

OpenText Magellan is a flexible AI and Analytics platform that combines open source machine learning with advanced analytics, enterprise-grade BI, and capabilities to acquire, merge, manage and analyz

Users
No information available
Industries
No information available
Market Segment
  • 40% Mid-Market
  • 40% Enterprise
OpenText Data Discovery (Magellan) features and usability ratings that predict user satisfaction
8.3
Application
Average: 8.5
8.3
Managed Service
Average: 8.2
8.3
Natural Language Understanding
Average: 8.4
6.1
Ease of Admin
Average: 8.4
Seller Details
Seller
OpenText
Year Founded
1991
HQ Location
Waterloo, ON
Twitter
@OpenText
21,716 Twitter followers
LinkedIn® Page
www.linkedin.com
22,403 employees on LinkedIn®
Ownership
NASDAQ:OTEX
Entry Level Price:$0
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    PerceptiLabs is a GUI for TensorFlow and a next-generation ML tool with a visual modeler that allows the flexibility of code, some automation in connecting components, all combined with the ease of a

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 67% Small-Business
    • 33% Mid-Market
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • PerceptiLabs features and usability ratings that predict user satisfaction
    10.0
    Application
    Average: 8.5
    8.3
    Managed Service
    Average: 8.2
    9.2
    Natural Language Understanding
    Average: 8.4
    0.0
    No information available
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Year Founded
    2017
    HQ Location
    San Francisco, California
    Twitter
    @PerceptiLabs
    758 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    3 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

PerceptiLabs is a GUI for TensorFlow and a next-generation ML tool with a visual modeler that allows the flexibility of code, some automation in connecting components, all combined with the ease of a

Users
No information available
Industries
No information available
Market Segment
  • 67% Small-Business
  • 33% Mid-Market
PerceptiLabs features and usability ratings that predict user satisfaction
10.0
Application
Average: 8.5
8.3
Managed Service
Average: 8.2
9.2
Natural Language Understanding
Average: 8.4
0.0
No information available
Seller Details
Year Founded
2017
HQ Location
San Francisco, California
Twitter
@PerceptiLabs
758 Twitter followers
LinkedIn® Page
www.linkedin.com
3 employees on LinkedIn®
Entry Level Price:Free
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    PopSQL is the evolution of legacy SQL editors like DataGrip, DBeaver, Postico. We provide a beautiful, modern SQL editor for data focused teams looking to save time, improve data accuracy, onboard ne

    Users
    No information available
    Industries
    • Computer Software
    • Information Technology and Services
    Market Segment
    • 43% Small-Business
    • 37% Mid-Market
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • PopSQL features and usability ratings that predict user satisfaction
    9.2
    Application
    Average: 8.5
    10.0
    Managed Service
    Average: 8.2
    10.0
    Natural Language Understanding
    Average: 8.4
    9.5
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Timescale
    Year Founded
    2015
    HQ Location
    New York, New York
    Twitter
    @TimescaleDB
    8,752 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    179 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

PopSQL is the evolution of legacy SQL editors like DataGrip, DBeaver, Postico. We provide a beautiful, modern SQL editor for data focused teams looking to save time, improve data accuracy, onboard ne

Users
No information available
Industries
  • Computer Software
  • Information Technology and Services
Market Segment
  • 43% Small-Business
  • 37% Mid-Market
PopSQL features and usability ratings that predict user satisfaction
9.2
Application
Average: 8.5
10.0
Managed Service
Average: 8.2
10.0
Natural Language Understanding
Average: 8.4
9.5
Ease of Admin
Average: 8.4
Seller Details
Seller
Timescale
Year Founded
2015
HQ Location
New York, New York
Twitter
@TimescaleDB
8,752 Twitter followers
LinkedIn® Page
www.linkedin.com
179 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    PrimeHub is a on-premise machine learning platform that enables AI/ML teams to focus on their true productivity in a collaborative environment. PrimeHub helps administrators manage hardware resources,

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 67% Small-Business
    • 33% Enterprise
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • PrimeHub Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    2
    Fast Processing
    2
    Setup Ease
    2
    AI Integration
    1
    Data Management
    1
    Cons
    Insufficient Learning Resources
    1
    Lack of Guidance
    1
    Performance Issues
    1
    Poor Documentation
    1
    Slow Performance
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • PrimeHub features and usability ratings that predict user satisfaction
    9.2
    Application
    Average: 8.5
    8.3
    Managed Service
    Average: 8.2
    8.3
    Natural Language Understanding
    Average: 8.4
    8.3
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    InfuseAI
    LinkedIn® Page
    www.linkedin.com
Product Description
How are these determined?Information
This description is provided by the seller.

PrimeHub is a on-premise machine learning platform that enables AI/ML teams to focus on their true productivity in a collaborative environment. PrimeHub helps administrators manage hardware resources,

Users
No information available
Industries
No information available
Market Segment
  • 67% Small-Business
  • 33% Enterprise
PrimeHub Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
2
Fast Processing
2
Setup Ease
2
AI Integration
1
Data Management
1
Cons
Insufficient Learning Resources
1
Lack of Guidance
1
Performance Issues
1
Poor Documentation
1
Slow Performance
1
PrimeHub features and usability ratings that predict user satisfaction
9.2
Application
Average: 8.5
8.3
Managed Service
Average: 8.2
8.3
Natural Language Understanding
Average: 8.4
8.3
Ease of Admin
Average: 8.4
Seller Details
Seller
InfuseAI
LinkedIn® Page
www.linkedin.com
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    SmartPredict is an end-to-end AI platform for solving real-world AI USE CASES and allowing everyone to complete AI projects effortlessly, in a simpler and customizable way.

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 67% Mid-Market
    • 33% Small-Business
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • SmartPredict Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    3
    Insights
    2
    Intuitive
    2
    Process Simplification
    2
    AI Integration
    1
    Cons
    Data Management Issues
    1
    Limited Features
    1
    UX Improvement
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • SmartPredict features and usability ratings that predict user satisfaction
    6.7
    Application
    Average: 8.5
    7.2
    Managed Service
    Average: 8.2
    8.3
    Natural Language Understanding
    Average: 8.4
    8.3
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    HQ Location
    Paris, FR
    LinkedIn® Page
    www.linkedin.com
    26 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

SmartPredict is an end-to-end AI platform for solving real-world AI USE CASES and allowing everyone to complete AI projects effortlessly, in a simpler and customizable way.

Users
No information available
Industries
No information available
Market Segment
  • 67% Mid-Market
  • 33% Small-Business
SmartPredict Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
3
Insights
2
Intuitive
2
Process Simplification
2
AI Integration
1
Cons
Data Management Issues
1
Limited Features
1
UX Improvement
1
SmartPredict features and usability ratings that predict user satisfaction
6.7
Application
Average: 8.5
7.2
Managed Service
Average: 8.2
8.3
Natural Language Understanding
Average: 8.4
8.3
Ease of Admin
Average: 8.4
Seller Details
HQ Location
Paris, FR
LinkedIn® Page
www.linkedin.com
26 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Spire.AI is a core technology innovation company focused on bringing unprecedented power of artificial intelligence technologies to enterprise software. Our flagship innovation Spire.AI TalentSHIP® 2

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 33% Enterprise
    • 33% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Spire.AI Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Customer Support
    1
    Ease of Use
    1
    Intuitive
    1
    User Interface
    1
    Cons
    UX Improvement
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Spire.AI features and usability ratings that predict user satisfaction
    10.0
    Application
    Average: 8.5
    10.0
    Managed Service
    Average: 8.2
    10.0
    Natural Language Understanding
    Average: 8.4
    0.0
    No information available
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Spire.AI
    Year Founded
    2007
    HQ Location
    Palo Alto, US
    LinkedIn® Page
    www.linkedin.com
    164 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Spire.AI is a core technology innovation company focused on bringing unprecedented power of artificial intelligence technologies to enterprise software. Our flagship innovation Spire.AI TalentSHIP® 2

Users
No information available
Industries
No information available
Market Segment
  • 33% Enterprise
  • 33% Mid-Market
Spire.AI Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Customer Support
1
Ease of Use
1
Intuitive
1
User Interface
1
Cons
UX Improvement
1
Spire.AI features and usability ratings that predict user satisfaction
10.0
Application
Average: 8.5
10.0
Managed Service
Average: 8.2
10.0
Natural Language Understanding
Average: 8.4
0.0
No information available
Seller Details
Seller
Spire.AI
Year Founded
2007
HQ Location
Palo Alto, US
LinkedIn® Page
www.linkedin.com
164 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Stratifyd is the only next-gen experience analytics platform powered by Smart AI™ that empowers people of all skill levels to move beyond traditional customer experience analytics. By surfacing insigh

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 70% Enterprise
    • 20% Mid-Market
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Stratifyd features and usability ratings that predict user satisfaction
    10.0
    Application
    Average: 8.5
    8.3
    Managed Service
    Average: 8.2
    8.3
    Natural Language Understanding
    Average: 8.4
    9.0
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Stratifyd
    Year Founded
    2015
    HQ Location
    Charlotte, US
    Twitter
    @getStratifyd
    1,026 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    12 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Stratifyd is the only next-gen experience analytics platform powered by Smart AI™ that empowers people of all skill levels to move beyond traditional customer experience analytics. By surfacing insigh

Users
No information available
Industries
No information available
Market Segment
  • 70% Enterprise
  • 20% Mid-Market
Stratifyd features and usability ratings that predict user satisfaction
10.0
Application
Average: 8.5
8.3
Managed Service
Average: 8.2
8.3
Natural Language Understanding
Average: 8.4
9.0
Ease of Admin
Average: 8.4
Seller Details
Seller
Stratifyd
Year Founded
2015
HQ Location
Charlotte, US
Twitter
@getStratifyd
1,026 Twitter followers
LinkedIn® Page
www.linkedin.com
12 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Combining Data Science, Business Intelligence, and Data Management Capabilities in One Integrated, Self-Serve Platform. Analance is a robust, salable end-to-end platform that combines Data Science, A

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 100% Mid-Market
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Analance Platform features and usability ratings that predict user satisfaction
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    LinkedIn® Page
    www.linkedin.com
    4,403 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Combining Data Science, Business Intelligence, and Data Management Capabilities in One Integrated, Self-Serve Platform. Analance is a robust, salable end-to-end platform that combines Data Science, A

Users
No information available
Industries
No information available
Market Segment
  • 100% Mid-Market
Analance Platform features and usability ratings that predict user satisfaction
0.0
No information available
0.0
No information available
0.0
No information available
0.0
No information available
Seller Details
LinkedIn® Page
www.linkedin.com
4,403 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    AIXON is a data science platform that unifies and enriches existing customer data to help you better understand your audience and run AI models to easily predict their future actions. Streamline Your

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 100% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Appier AIXON Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    AI Capabilities
    1
    AI Integration
    1
    AI Technology
    1
    Analytics
    1
    Analytics Expertise
    1
    Cons
    Connectivity Issues
    1
    Difficult Customization
    1
    Integration Challenges
    1
    Integration Issues
    1
    Learning Curve
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Appier AIXON features and usability ratings that predict user satisfaction
    10.0
    Application
    Average: 8.5
    10.0
    Managed Service
    Average: 8.2
    10.0
    Natural Language Understanding
    Average: 8.4
    10.0
    Ease of Admin
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Appier
    Year Founded
    2012
    HQ Location
    Taipei, Taiwan
    Twitter
    @GoAppier
    1,226 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    850 employees on LinkedIn®
    Ownership
    TYO: 4180
Product Description
How are these determined?Information
This description is provided by the seller.

AIXON is a data science platform that unifies and enriches existing customer data to help you better understand your audience and run AI models to easily predict their future actions. Streamline Your

Users
No information available
Industries
No information available
Market Segment
  • 100% Mid-Market
Appier AIXON Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
AI Capabilities
1
AI Integration
1
AI Technology
1
Analytics
1
Analytics Expertise
1
Cons
Connectivity Issues
1
Difficult Customization
1
Integration Challenges
1
Integration Issues
1
Learning Curve
1
Appier AIXON features and usability ratings that predict user satisfaction
10.0
Application
Average: 8.5
10.0
Managed Service
Average: 8.2
10.0
Natural Language Understanding
Average: 8.4
10.0
Ease of Admin
Average: 8.4
Seller Details
Seller
Appier
Year Founded
2012
HQ Location
Taipei, Taiwan
Twitter
@GoAppier
1,226 Twitter followers
LinkedIn® Page
www.linkedin.com
850 employees on LinkedIn®
Ownership
TYO: 4180
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    As a software and services company focused exclusively on Micro Focus Content Manager (formerly known as HP TRIM and HPE Records Manager), we work with our customers to improve their everyday use and

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 100% Small-Business
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • bluebeak.ai features and usability ratings that predict user satisfaction
    6.7
    Application
    Average: 8.5
    6.7
    Managed Service
    Average: 8.2
    5.0
    Natural Language Understanding
    Average: 8.4
    0.0
    No information available
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Year Founded
    2018
    HQ Location
    Brisbane, AU
    LinkedIn® Page
    www.linkedin.com
    1 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

As a software and services company focused exclusively on Micro Focus Content Manager (formerly known as HP TRIM and HPE Records Manager), we work with our customers to improve their everyday use and

Users
No information available
Industries
No information available
Market Segment
  • 100% Small-Business
bluebeak.ai features and usability ratings that predict user satisfaction
6.7
Application
Average: 8.5
6.7
Managed Service
Average: 8.2
5.0
Natural Language Understanding
Average: 8.4
0.0
No information available
Seller Details
Year Founded
2018
HQ Location
Brisbane, AU
LinkedIn® Page
www.linkedin.com
1 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    CyberDeck is a platform to perform Data Science at the click of a mouse. This includes Data Processing, Dashboarding, Machine Learning, Time Series forecasting, Explainable AI, Auto Clustering, Explor

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 50% Small-Business
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • CyberDeck features and usability ratings that predict user satisfaction
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    HQ Location
    N/A
    LinkedIn® Page
    www.linkedin.com
    1 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

CyberDeck is a platform to perform Data Science at the click of a mouse. This includes Data Processing, Dashboarding, Machine Learning, Time Series forecasting, Explainable AI, Auto Clustering, Explor

Users
No information available
Industries
No information available
Market Segment
  • 50% Small-Business
CyberDeck features and usability ratings that predict user satisfaction
0.0
No information available
0.0
No information available
0.0
No information available
0.0
No information available
Seller Details
HQ Location
N/A
LinkedIn® Page
www.linkedin.com
1 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Darwin is an automated model building product that allows you to move from data to model deployment in less time than traditional methods, enabling the rapid prototyping of scenarios and productive ex

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 100% Enterprise
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Darwin Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Collaboration
    1
    Ease of Use
    1
    Easy Integrations
    1
    Flexibility
    1
    User Interface
    1
    Cons
    Complexity
    1
    Lacking Features
    1
    Slow Loading
    1
    UX Improvement
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Darwin features and usability ratings that predict user satisfaction
    8.3
    Application
    Average: 8.5
    9.2
    Managed Service
    Average: 8.2
    8.3
    Natural Language Understanding
    Average: 8.4
    0.0
    No information available
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Avathon
    Year Founded
    2013
    HQ Location
    Austin, Texas
    LinkedIn® Page
    www.linkedin.com
    312 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Darwin is an automated model building product that allows you to move from data to model deployment in less time than traditional methods, enabling the rapid prototyping of scenarios and productive ex

Users
No information available
Industries
No information available
Market Segment
  • 100% Enterprise
Darwin Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Collaboration
1
Ease of Use
1
Easy Integrations
1
Flexibility
1
User Interface
1
Cons
Complexity
1
Lacking Features
1
Slow Loading
1
UX Improvement
1
Darwin features and usability ratings that predict user satisfaction
8.3
Application
Average: 8.5
9.2
Managed Service
Average: 8.2
8.3
Natural Language Understanding
Average: 8.4
0.0
No information available
Seller Details
Seller
Avathon
Year Founded
2013
HQ Location
Austin, Texas
LinkedIn® Page
www.linkedin.com
312 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Advancements in AI, powered by deep learning, have triggered groundbreaking innovations. But, long development cycles, high compute costs, and poor inference performance are making it almost impossibl

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 50% Mid-Market
    • 50% Enterprise
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Deci AI Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    1
    Easy Integrations
    1
    Efficiency
    1
    Fast Processing
    1
    Innovation
    1
    Cons
    Complexity
    1
    Difficult Setup
    1
    Initial Difficulties
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Deci AI features and usability ratings that predict user satisfaction
    10.0
    Application
    Average: 8.5
    10.0
    Managed Service
    Average: 8.2
    10.0
    Natural Language Understanding
    Average: 8.4
    0.0
    No information available
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Deci AI
    Year Founded
    2019
    HQ Location
    Tel Aviv, IL
    LinkedIn® Page
    www.linkedin.com
    30 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Advancements in AI, powered by deep learning, have triggered groundbreaking innovations. But, long development cycles, high compute costs, and poor inference performance are making it almost impossibl

Users
No information available
Industries
No information available
Market Segment
  • 50% Mid-Market
  • 50% Enterprise
Deci AI Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
1
Easy Integrations
1
Efficiency
1
Fast Processing
1
Innovation
1
Cons
Complexity
1
Difficult Setup
1
Initial Difficulties
1
Deci AI features and usability ratings that predict user satisfaction
10.0
Application
Average: 8.5
10.0
Managed Service
Average: 8.2
10.0
Natural Language Understanding
Average: 8.4
0.0
No information available
Seller Details
Seller
Deci AI
Year Founded
2019
HQ Location
Tel Aviv, IL
LinkedIn® Page
www.linkedin.com
30 employees on LinkedIn®

Learn More About Data Science and Machine Learning Platforms

What are data science and machine learning (DSML) platforms?

The amount of data being produced within companies is increasing rapidly. Businesses are realizing its importance and are leveraging this accumulated data to gain a competitive advantage. Companies are turning their data into insights to drive business decisions and improve product offerings. With data science, of which artificial intelligence (AI) is a part, users can mine vast amounts of data. Whether structured or unstructured, it uncovers patterns and makes data-driven predictions.

One crucial aspect of data science is the development of machine learning models. Users leverage data science and machine learning engineering platforms that facilitate the entire process, from data integration to model management. With this single platform, data scientists, engineers, developers, and other business stakeholders collaborate to ensure that the data is appropriately managed and mined for meaning.

Types of DSML platforms

Not all data science and machine learning software platforms are designed equal. These tools allow developers and data scientists to build, train, and deploy machine learning models. However, they differ in terms of the data types supported and the method and manner of deployment. 

Cloud data science and machine learning platforms

With the ability to store data in remote servers and easily access it, businesses can focus less on building infrastructure and more on their data, both in terms of how to derive insight from it and to ensure its quality. Cloud-based DSML platforms afford them the ability to both train and deploy the models in the cloud. This also helps when these models are being built into various applications, as it provides easier access to change and tweak the models that have been deployed.

On-premises data science and machine learning platforms

Cloud is not always the answer, as it is not always a viable solution. Not all data experts have the luxury of working in the cloud for several reasons, including data security and issues related to latency. In cases like health care, strict regulations, such as HIPAA, require data to be secure. Therefore, on-premises DSML solutions can be vital for some professionals, such as those in the healthcare industry and government sector, where privacy compliance is stringent and sometimes necessary.

Edge platforms

Some DSML tools and software allow for spinning up algorithms on the edge, consisting of a mesh network of data centers that process and store data locally before being sent to a centralized storage center or cloud. Edge computing optimizes cloud computing systems to avoid disruptions or slowing in the sending and receiving of data. 

What are the common features of data science and machine learning solutions?

The following are some core features within data science and machine learning platforms that can help users prepare data and train, manage, and deploy models.

Data preparation: Data ingestion features allow users to integrate and ingest data from various internal or external sources, such as enterprise applications, databases, or Internet of Things (IoT) devices.

Dirty data (i.e., incomplete, inaccurate, or incoherent data) is a nonstarter for building machine learning models. Bad AI training begets bad models, which in turn begets bad predictions that may be useful at best and detrimental at worst. Therefore, data preparation capabilities allow for data cleansing and data augmentation (in which related datasets are brought to bear on company data) to ensure that the data journey gets off to a good start.

Model training: Feature engineering transforms raw data into features that better represent the underlying problem to the predictive models. It is a key step in building a model and improves model accuracy on unseen data.

Building a model requires training it by feeding it data. Training a model is the process of determining the proper values for all the weights and the bias from the inputted data. Two key methods used for this purpose are supervised learning and unsupervised learning. The former is a method in which the input is labeled, whereas the latter deals with unlabeled data.

Model management: The process does not end once the model is released. Businesses must monitor and manage their models to ensure that they remain accurate and updated. Model comparison allows users to quickly compare models to a baseline or to a previous result to determine the quality of the model built. Many of these platforms also have tools for tracking metrics, such as accuracy and loss.

Model deployment: The deployment of machine learning models is the process of making them available in production environments, where they provide predictions to other software systems. Methods of deployment include REST APIs, GUI for on-demand analysis, and more.

What are the benefits of using DSML engineering platforms?

Through the use of data science and machine learning platforms, data scientists can gain visibility into the entire data journey, from ingestion to inference. This helps them better understand what is and isn’t working and provides them with the tools necessary to fix problems if and when they arise. With these tools, experts prepare and enrich their data, leverage machine learning libraries, and deploy their algorithms into production.

Share data insights: Users can share data, models, dashboards, or other related information with collaboration-based tools to foster and facilitate teamwork.

Simplify and scale data science: Many platforms are opening up these tools to a broader audience with easy-to-use features and drag-and-drop capabilities. In addition, pre-trained models and out-of-the-box pipelines tailored to specific tasks help streamline the process. These platforms easily help scale up experiments across many nodes to perform distributed training on large datasets.

Experimentation: Before a model is pushed to production, data scientists spend a significant amount of time working with the data and experimenting to find an optimal solution. Data science and machine learning vendors facilitate this experimentation through data visualization, data augmentation, and data preparation tools. Different types of layers and optimizers for deep learning, which are algorithms or methods used to change the attributes of neural networks, such as weights and learning rate, to reduce losses, are also used in experimentation.

Who uses data science and machine learning products?

Data scientists are in high demand, but skilled professionals are in shortage. The skillset is varied and vast (for example, there is a need to understand various algorithms, advanced mathematics, programming skills, and more). Therefore, such professionals are difficult to come by and command high compensation. To tackle this issue, platforms increasingly include features that make it easier to develop AI solutions, such as drag-and-drop capabilities and prebuilt algorithms.

In addition, for data science projects to initiate, it is key that the broader business buys into them. The more robust platforms provide resources that help nontechnical users understand the models, the data involved, and the aspects of the business that have been impacted.

Data engineers: With robust data integration capabilities, data engineers tasked with the design, integration, and management of data use these platforms to collaborate with data scientists and other stakeholders within the organization.

Citizen data scientists: With the rise of more user-friendly features, citizen data scientists, who are not professionally trained but have developed data skills, are increasingly turning to data science and machine learning platforms to bring AI into their organizations.

Professional data scientists: Expert data scientists use these solutions to scale data science operations across the lifecycle, simplifying the process of experimentation to deployment and speeding up data exploration and preparation, as well as model development and training.

Business stakeholders: Business stakeholders use these tools to gain clarity into the machine learning models and better understand how they tie in with the broader business and its operations.

What are the alternatives to data science and machine learning platforms?

Alternatives to data science and machine learning solutions can replace this type of software, either partially or completely:

AI & machine learning operationalization software: Depending on the use case, businesses might consider AI and machine learning operationalization software. This software does not provide a platform for the full end-to-end development of machine learning models but can provide more robust features around operationalizing these algorithms. This includes monitoring the health, performance, and accuracy of models.

Machine learning software: Data science and machine learning platforms are great for the full-scale development of models, whether that be for computer vision, natural language processing (NLP), and more. However, in some cases, businesses may want a solution that is more readily available off the shelf, which they can use in a plug-and-play fashion. In such a case, they can consider machine learning software, which will involve less setup time and development costs.

There are many different types of machine learning algorithms that perform a variety of tasks and functions. These algorithms may consist of more specific ones, such as association rule learning, Bayesian networks, clustering, decision tree learning, genetic algorithms, learning classifier systems, and support vector machines, among others. This helps organizations look for point solutions.

Challenges with DSML platforms

Software solutions can come with their own set of challenges. 

Data requirements: A great deal of data is required for most AI algorithms to learn what is needed. Users need to train machine learning algorithms using techniques such as reinforcement learning, supervised learning, and unsupervised learning to build a truly intelligent application.

Skill shortage: There is also a shortage of people who understand how to build these algorithms and train them to perform the necessary actions. The common user cannot simply fire up AI software and have it solve all their problems.

Algorithmic bias: Although the technology is efficient, it is not always effective and is marred by various types of biases in the training data, such as race or gender biases. For example, since many facial recognition algorithms are trained on datasets with primarily white male faces, others are more likely to be falsely identified by the systems.

Which companies should buy DSML engineering platforms?

The implementation of AI can have a positive impact on businesses across a host of different industries. Here are a handful of examples:

Financial services: AI is widely used in financial services, with banks using it for everything from developing credit score algorithms to analyzing earnings documents to spot trends. With data science and machine learning software solutions, data science teams can build models with company data and deploy them to internal and external applications.

Healthcare: Within healthcare, businesses can use these platforms to better understand patient populations, such as predicting in-patient visits and developing systems that can match people with relevant clinical trials. In addition, as the process of drug discovery is particularly costly and takes a significant amount of time, healthcare organizations are using data science to speed up the process, using data from past trials, research papers, and more.

Retail: In retail, especially e-commerce, personalization rules supreme. The top retailers are leveraging these platforms to provide customers with highly personalized experiences based on factors such as previous behavior and location. With machine learning in place, these businesses can display highly relevant material and catch the attention of potential customers. 

How to choose the best data science and machine learning (DSML) platform

Requirements gathering (RFI/RFP) for DSML platforms

If a company is just starting out and looking to purchase its first data science and machine learning platform, or wherever a business is in its buying process, g2.com can help select the best option.

The first step in the buying process must involve a careful look at one’s company data. As a fundamental part of the data science journey involves data engineering (i.e., data collection and analysis), businesses must ensure that their data quality is high and the platform in question can adequately handle their data, both in terms of format as well as volume. If the company has amassed a lot of data, it needs to look for a solution that can grow with the organization. Users should think about the pain points and jot them down; these should be used to help create a checklist of criteria. Additionally, the buyer must determine the number of employees who will need to use this software, as this drives the number of licenses they are likely to buy.

Taking a holistic overview of the business and identifying pain points can help the team springboard into creating a checklist of criteria. The checklist serves as a detailed guide that includes both necessary and nice-to-have features, including budget, features, number of users, integrations, security requirements, cloud or on-premises solutions, and more.

Depending on the deployment scope, producing an RFI, a one-page list with a few bullet points describing what is needed from a data science platform might be helpful.

Compare DSML products

Create a long list

From meeting the business functionality needs to implementation, vendor evaluations are an essential part of the software buying process. For ease of comparison, after all demos are complete, it helps to prepare a consistent list of questions regarding specific needs and concerns to ask each vendor.

Create a short list

From the long list of vendors, it is helpful to narrow down the list of vendors and come up with a shorter list of contenders, preferably no more than three to five. With this list in hand, businesses can produce a matrix to compare the features and pricing of the various solutions.

Conduct demos

To ensure a thorough comparison, the user should demo each solution on the short list using the same use case and datasets. This will allow the business to evaluate like-for-like and see how each vendor compares against the competition.

Selection of DSML platforms

Choose a selection team

Before getting started, it's crucial to create a winning team that will work together throughout the entire process, from identifying pain points to implementation. The software selection team should consist of members of the organization who have the right interests, skills, and time to participate in this process. A good starting point is to aim for three to five people who fill roles such as the main decision maker, project manager, process owner, system owner, or staffing subject matter expert, as well as a technical lead, IT administrator, or security administrator. In smaller companies, the vendor selection team may be smaller, with fewer participants, multitasking, and taking on more responsibilities.

Negotiation

Just because something is written on a company’s pricing page does not mean it is fixed (although some companies will not budge). It is imperative to open up a conversation regarding pricing and licensing. For example, the vendor may be willing to give a discount for multi-year contracts or to recommend the product to others.

Final decision

After this stage, and before going all in, it is recommended to roll out a test run or pilot program to test adoption with a small sample size of users. If the tool is well used and well received, the buyer can be confident that the selection was correct. If not, it might be time to go back to the drawing board.

Cost of data science and machine learning platforms

As mentioned above, data science and machine learning platforms are available as both on-premises and cloud solutions. Pricing between the two might differ, with the former often requiring more upfront infrastructure costs. 

As with any software, these platforms are frequently available in different tiers, with the more entry-level solutions costing less than the enterprise-scale ones. The former will frequently not have as many features and may have usage caps. DSML vendors may have tiered pricing, in which the price is tailored to the users’ company size, the number of users, or both. This pricing strategy may come with some degree of support, which might be unlimited or capped at a certain number of hours per billing cycle.

Once set up, they do not often require significant maintenance costs, especially if deployed in the cloud. As these platforms often come with many additional features, businesses looking to maximize the value of their software can contract third-party consultants to help them derive insights from their data and get the most out of the software.

Return on Investment (ROI)

Businesses decide to deploy data science and machine learning platforms with the goal of deriving some degree of ROI. As they are looking to recoup the losses that they spent on the software, it is critical to understand the costs associated with it. As mentioned above, these platforms typically are billed per user, which is sometimes tiered depending on the company size. More users will typically translate into more licenses, which means more money.

Users must consider how much is spent and compare that to what is gained, both in terms of efficiency as well as revenue. Therefore, businesses can compare processes between pre- and post-deployment of the software to better understand how processes have been improved and how much time has been saved. They can even produce a case study (either for internal or external purposes) to demonstrate the gains they have seen from their use of the platform.

Implementation of data science and machine learning platforms

How are DSML software tools implemented?

Implementation differs drastically depending on the complexity and scale of the data. In organizations with vast amounts of data in disparate sources (e.g., applications, databases, etc.), it is often wise to utilize an external party, whether that be an implementation specialist from the vendor or a third-party consultancy. With vast experience under their belts, they can help businesses understand how to connect and consolidate their data sources and how to use the software efficiently and effectively.

Who is responsible for DSML platform implementation?

It may require many people or teams to properly deploy a data science platform, including data engineers, data scientists, and software engineers. This is because, as mentioned, data can cut across teams and functions. As a result, one person or even one team rarely has a full understanding of all of a company’s data assets. With a cross-functional team in place, a business can begin to piece together its data and begin the journey of data science, starting with proper data preparation and management.

What is the implementation process for data science and machine learning products?

In terms of implementation, it is typical for the platform to be deployed in a limited fashion and subsequently rolled out in a broader fashion. For example, a retail brand might decide to A/B test its use of a personalization algorithm for a limited number of visitors to its site to understand better how it is performing. If the deployment is successful, the data science team can present their findings to their leadership team (which might be the CTO, depending on the structure of the business).

If the deployment is unsuccessful, the team can return to the drawing board to determine what went wrong. This will involve examining the training data and algorithms used. If they try again, yet nothing seems to be successful (i.e., the outcome is faulty or there is no improvement in predictions), the business might need to go back to basics and review their data.

When should you implement DSML tools?

As previously mentioned, data engineering, which involves preparing and gathering data, is a fundamental feature of data science projects. Therefore, businesses must make getting their data in order their top priority, ensuring that there are no duplicate records or misaligned fields. Although this sounds basic, it is anything but. Faulty data as an input will result in faulty data as an output.