sota-ml-engineering

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v0.0.0martinholovskyCC-BY-4.0Aktualisiert vor 6 TQuelle →

State-of-the-art ML engineering / MLOps rules (2026) for BUILDING and AUDITING production machine-learning systems — the training→serving→monitoring lifecycle of classical/predictive ML. Distinct from LLM apps (prompts/RAG/agents → sota-llm-engineering). Covers ML system architecture (feature stores

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vor 6 TLetzte Aktualisierung
Skill
Autormartinholovsky
Version0.0.0
LizenzCC-BY-4.0
KategorieWorkflow
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State-of-the-art ML engineering / MLOps rules (2026) for BUILDING and AUDITING production machine-learning systems — the training→serving→monitoring lifecycle of classical/predictive ML. Distinct from LLM apps (prompts/RAG/agents → sota-llm-engineering). Covers ML system architecture (feature stores, model registry, reproducibility), data & features (leakage, train/serve skew, versioning), trainin

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