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default-prediction

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Finance and Risk Analytics Project: Predicting credit default risk using machine learning models (Logistic Regression, Random Forest) and assessing stock market risk through historical returns and volatility analysis to guide financial risk management and investment strategies.

  • Updated Nov 8, 2024
  • Jupyter Notebook

Leakage-aware LendingClub default-risk prediction with logit, elastic net, CART, bagging, random forests, gains and lift screening, and cross-fitted DML.

  • Updated Aug 12, 2026
  • R

Behavioural credit default model on 30k real customers: imbalance-aware (PR-AUC and KS, not accuracy), a cost-based approval threshold, SHAP explainability, and fair-lending feature exclusions.

  • Updated Jun 29, 2026
  • Jupyter Notebook

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