ai-ml-data-science
End-to-end data science and ML engineering workflows: problem framing, data/EDA, feature engineering (feature stores), modelling, evaluation/reporting, plus SQL transformations with SQLMesh. Use for dataset exploration, feature design, model selection, metrics and slice analysis, model cards/eval...
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Categorydata analytics
UpdatedFebruary 10, 2026
data-scientistml-ai-engineerdata-analystanalytics-engineerproduct-managerdata analyticsdevelopmentproduct
majiayu000/claude-skill-registry