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Using Cake for TensorFlow

TensorFlow is an open-source machine learning framework developed by Google for building, training, and deploying deep learning models.
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Cake cut a year off our product development cycle. That's the difference between life and death for small companies

Dan Doe
President, Altis Labs

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Cake cut a year off our product development cycle. That's the difference between life and death for small companies

Jane Doe
CEO, AMD

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Cake cut a year off our product development cycle. That's the difference between life and death for small companies

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Vice President, Test Company

How it works

Build and deploy deep learning models with TensorFlow on Cake

Cake supports scalable TensorFlow pipelines for training, tuning, and inference with compliance, observability, and efficiency.

Management Overhead

Model development at scale

Design and train custom models for vision, NLP, tabular data, and more.

Management Overhead

Integrated experiment orchestration

Run and track TensorFlow workflows with resource and policy control.

Management Overhead

Production-ready inference and monitoring

Deploy models with built-in health checks, scaling, and latency metrics.

Frequently asked questions about Cake and TensorFlow

What is TensorFlow?
TensorFlow is Google’s open-source framework for building, training, and deploying machine learning and deep learning models.
How does Cake integrate TensorFlow?
Cake lets you build, orchestrate, and govern TensorFlow workflows with resource scheduling and experiment tracking.
Can I use TensorFlow for both training and inference?
Yes—TensorFlow supports full-lifecycle ML, and Cake helps manage both stages securely.
What kinds of workloads does TensorFlow support?
TensorFlow powers image recognition, NLP, tabular models, time series, and more.
Does Cake provide observability for TensorFlow models?
Yes—Cake integrates with tools like TensorBoard and provides usage tracking, latency metrics, and access control.
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