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MLOps with TensorFlow: Building and Deploying Production ML Pipelines
محتوى الدورة
MLOps and TFX with Beam and Dataflow
ML engineering for production ML deployments with TFX (TensorFlow Fall 2020 Updates)
What exactly is this TFX thing? (TensorFlow Extended)
How do TFX pipelines work? (TensorFlow Extended)
Why do I need metadata? (TensorFlow Extended)
Distributed Processing and Components (TensorFlow Extended)
Model Understanding and Business Reality (TensorFlow Extended)
Deploying production ML models with TensorFlow Serving overview
TensorFlow Serving client examples
How to customize TensorFlow Serving
TensorFlow Serving performance optimization
Advanced features on TensorFlow Serving
TFX: Production ML pipelines with TensorFlow (TF World '19)
Day 2 Keynote (TF World '19)
Machine Learning Fairness: Lessons Learned (Google I/O'19)
TensorFlow Extended (TFX) Overview and Pre-training Workflow (TF Dev Summit '19)
TensorFlow Extended (TFX) Post-training Workflow (TF Dev Summit '19)
TensorFlow Extended (TFX): Machine Learning Pipelines and Model Understanding (Google I/O'19)
TFX: Production ML with TensorFlow in 2020 (TF Dev Summit '20)
Taking Machine Learning from Research to Production • Robert Crowe • GOTO 2019
SysML 19: Martin Zinkevich, Data Validation for Machine Learning
Continuous retraining with TFX and Beam
ML Deployment [Google #ML Summit]
From Experimentation to Products: The Production Machine Learning Journey • Robert Crowe • GOTO 2021
Machine Learning Engineering for Production (MLOps)
Beam Summit 2021 - ML Inference at scale, easy as learning your 5 times table
Does your app use ML? Make it a product with TFX | Session
Manage MLOps and deploy Machine Learning to production with the new and improved TFX
Adapting to Change: How Machine Intelligences Adapt to a Changing World • Robert Crowe • GOTO 2022
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