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statsbomb-data

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⚽️ Unveiling the FIFA World Cup 2022 Final! 🏆 Explore the epic clash between Argentina and France through data-driven visualizations. From shot maps to passing networks and heatmaps, this project combines football excitement with advanced analytics to reveal tactical insights and key moments from one of the greatest matches in history!

  • Updated Apr 12, 2025
  • Jupyter Notebook

The Project develops a machine learning model using XGBoost to predict injury risks in women’s football by analyzing workload, recovery metrics, and player data. It identifies key risk factors such as training intensity and workload-recovery balance to provide actionable insights for coaches, reducing injury rates through personalized management.

  • Updated Mar 21, 2026
  • HTML

Repository for Parma Calcio Data Scientist assignment. Includes two tasks: building an xG model using StatsBomb open data (event data / freeze-frame) and predicting the 2015/16 Ballon d’Or winner from Big-5 leagues data. Implemented in Python with notebooks and reusable modules.

  • Updated Sep 4, 2025
  • Jupyter Notebook

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