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ml-pipeline

Designs and implements production-grade ML pipeline infrastructure: configures experiment tracking with MLflow or Weights & Biases, creates Kubeflow or Airflow DAGs for training orchestration, builds feature store schemas with Feast, deploys model registries, and automates retraining and validation workflows. Use when building ML pipelines, orchestrating training workflows, automating model lifecy

9.5kstars
Updated 24 days ago

View on GitHub ↗License: MIT

How to add

/plugin marketplace add Jeffallan/claude-skills

The exact command may vary by repository. Check the README on GitHub.

For the skill author

Drop this on your repo README

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