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data-ml-pipeline

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UpdatedJuly 5, 2026 at 10:55

Design and operate data and ML pipelines for any product: data sourcing, ingestion, schema management, transformation (batch and streaming), feature stores, dataset versioning, model training, evaluation, deployment, drift monitoring, retraining triggers, lineage, and reproducibility. Covers analytical data warehouses, lakehouse architectures, real-time streaming, embeddings/vector stores, and LLM fine-tune/RAG pipelines. Produces architecture, data contracts, validation plan, evaluation harness, deployment plan, and monitoring posture. Use whenever the product depends on data products, ML models, or LLM augmentation.

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