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financial-data-science

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OPTIMIZING-STOCK-TRADING-STRATEGY-WITH-K-MEANS-CLUSTERING

This project involves exploratory data analysis and predictive modeling using various statistical and machine learning techniques. In the financial domain, we analyze the Weekly dataset, containing weekly returns spanning two decades. We aim to identify patterns and trends in the data, perform logistic regression, and compare different classificati

  • Updated Aug 8, 2023
  • R

SQL-backed volatility forecasting and market risk platform using Python, DuckDB and Streamlit, with realised volatility estimators, EWMA/GARCH/HAR forecasts, VaR/ES backtesting, regime detection, model validation reports and dashboard analytics.

  • Updated May 22, 2026
  • Python

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