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feature-importance-analysis

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Predicting Late Delivery Risk in Supply Chains using Machine Learning with EDA, feature engineering, and model explainability

  • Updated Oct 2, 2025
  • Jupyter Notebook

This project explores customer subscription behavior in banking marketing campaigns using the UCI Bank Marketing dataset. It applies machine learning models to predict which customers are likely to subscribe to a term deposit and identifies key demographic, financial, and campaign-related factors that influence customer decisions.

  • Updated Feb 28, 2026
  • Jupyter Notebook

U-M MADS: Milestone Project | ML-powered system that detects and classifies racial bias in news articles using supervised and unsupervised learning techniques, to provide comprehensive bias analysis.

  • Updated Jul 20, 2024
  • Jupyter Notebook

End-to-end portfolio covering core Machine Learning, Data Engineering (MLOps), and Modern AI (LLM/Agent) development. Demonstrates proficiency in building and deploying robust systems from data acquisition to final deployment.

  • Updated Mar 9, 2026
  • Jupyter Notebook

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