TensorFlow TFX Logo
TensorFlow TFX Logo
TensorFlow

TensorFlow TFX

Composite Score
8.3 /10
CX Score
8.6 /10
Category
TensorFlow TFX
8.3 /10

What is TensorFlow TFX?

TFX is an end-to-end platform for deploying production ML pipelines. A TFX pipeline is a sequence of components that implement an ML pipeline which is specifically designed for scalable, high-performance machine learning tasks. Components are built using TFX libraries which can also be used individually. When you're ready to move your models from research to production, TFX can be used to create and manage a production pipeline.

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Awards & Recognition

TensorFlow TFX won the following awards in the Machine Learning Platforms category

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TensorFlow TFX Ratings

Real user data aggregated to summarize the product performance and customer experience.
Download the entire Product Scorecard to access more information on TensorFlow TFX.

Product scores listed below represent current data. This may be different from data contained in reports and awards, which express data as of their publication date.

89 Likeliness to Recommend

1
Since last award

100 Plan to Renew

85 Satisfaction of Cost Relative to Value


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Emotional Footprint Overview

Product scores listed below represent current data. This may be different from data contained in reports and awards, which express data as of their publication date.

+93 Net Emotional Footprint

The emotional sentiment held by end users of the software based on their experience with the vendor. Responses are captured on an eight-point scale.

How much do users love TensorFlow TFX?

0% Negative
4% Neutral
96% Positive

Pros

  • Continually Improving Product
  • Trustworthy
  • Efficient Service
  • Caring

Feature Ratings

Average 82

Data Labeling

85

Performance and Scalability

85

Feature Engineering

84

Algorithm Diversity

84

Openness and Flexibility

83

Model Training

83

Model Monitoring and Management

83

Model Tuning

83

Data Pre-Processing

81

Ensembling

81

Data Exploration and Visualization

80

Vendor Capability Ratings

Average 80

Quality of Features

83

Ease of Customization

82

Business Value Created

82

Availability and Quality of Training

82

Product Strategy and Rate of Improvement

81

Breadth of Features

81

Ease of IT Administration

81

Ease of Data Integration

78

Ease of Implementation

78

Usability and Intuitiveness

77

Vendor Support

71

TensorFlow TFX Reviews

Mohd K.

  • Role: Information Technology
  • Industry: Technology
  • Involvement: IT Development, Integration, and Administration
Validated Review
Verified Reviewer

Submitted Jul 2023

TFX: A Production-Ready Machine Learning Platform

Likeliness to Recommend

9 /10

What differentiates TensorFlow TFX from other similar products?

TensorFlow Extended (TFX) is a production-ready machine learning platform that is designed to help you automate the ML process, from data preparation to model deployment. It provides a number of features that differentiate it from other similar products, including: A set of modular components A configuration framework Support for multiple ML framework

What is your favorite aspect of this product?

My favorite aspect of TensorFlow Extended (TFX) is its modularity. The platform is made up of a set of individual components that can be used to build ML pipelines. This makes it easy to customize your pipelines to meet your specific needs.

What do you dislike most about this product?

My biggest dislike about TensorFlow Extended (TFX) is its steep learning curve. The platform is complex and there is a lot to learn in order to use it effectively.

Pros

  • Performance Enhancing
  • Unique Features
  • Fair
  • Acts with Integrity

Shaurya S.

  • Role: Information Technology
  • Industry: Finance
  • Involvement: End User of Application
Validated Review
Verified Reviewer

Submitted Jul 2023

Production Grade machine learning pipelines

Likeliness to Recommend

9 /10

What differentiates TensorFlow TFX from other similar products?

Functional API requiring little configuration for production grade code, which is reliable and efficient.

What is your favorite aspect of this product?

Tight integration with GCP means there are additional plugins that can be used for making this.

What do you dislike most about this product?

The variety of models offered out of the box leave something to be desired.

What recommendations would you give to someone considering this product?

A good command on the open source Tensorflow library is needed for efficient usage of TFX

Pros

  • Effective Service
  • Appreciates Incumbent Status
  • Helps Innovate
  • Enables Productivity

Muskan H.

  • Role: Industry Specific Role
  • Industry: Engineering
  • Involvement: End User of Application
Validated Review
Verified Reviewer

Submitted Jun 2023

Production-Ready Pipelines

Likeliness to Recommend

10 /10

What differentiates TensorFlow TFX from other similar products?

Some key differentiating features of TensorFlow TFX: 1. TensorFlow TFX (TensorFlow Extended) is a comprehensive platform for building and deploying production-ready machine learning (ML) pipelines. 2. TFX is specifically designed for building ML pipelines that are scalable, modular, and production-ready. It provides components for data validation, preprocessing, model training, evaluation, and serving, enabling the creation of end-to-end pipelines that can be deployed in real-world production environments.

What is your favorite aspect of this product?

TFX is a repository for managing and versioning ML models. TFX is designed to handle large-scale ML workflows efficiently.

What do you dislike most about this product?

TFX's extensive set of tools and components may introduce unnecessary complexity and overhead for smaller ML projects or experiments. Users might encounter difficulties finding detailed examples or troubleshooting specific issues related to TFX.

What recommendations would you give to someone considering this product?

TensorFlow integration, and scalable capabilities, making it an excellent choice for building end-to-end ML pipelines in real-world applications.

Pros

  • Client Friendly Policies
  • Helps Innovate
  • Continually Improving Product
  • Reliable

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