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snevil/README.md

πŸ‘‹ Hi there, I'm Matteo!

πŸŽ“ I'm currently pursuing an MSc in Data Science & Engineering at Politecnico di Torino.
πŸ’» I'm passionate about Machine Learning, Data Engineering, and building smart solutions to solve real-world problems.

πŸš€ Right now, I'm focusing on developing side projects to sharpen my skills and improve the quality of my work β€” from APIs and automation workflows to ML-driven insights.


🌐 Connect with Me


⚑ Tech & Tools I Use

  • Languages: Python, SQL, C++
  • Data: Pandas, NumPy, Scikit-learn, XGBoost
  • APIs & Backend: FastAPI, Flask, REST
  • Automation: n8n, Airflow (basic)
  • ML & AI: Time Series Forecasting, RAG Systems, LLM APIs

"Always building, always learning."

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  1. mnist-digit-classifier mnist-digit-classifier Public

    PyTorch implementation of the Kaggle Digit Recognizer competition (MNIST). Includes data preprocessing, CNN model, training loop with early stopping, scheduler, and submission pipeline.

    Jupyter Notebook

  2. news-article-classification-robust-ensembles news-article-classification-robust-ensembles Public

    A robust news article classification system combining a two-stage editorial bias modeling strategy with transformer-based ensemble methods under noisy, real-world data conditions.

    Jupyter Notebook

  3. Retail-Demand-Forecasting-with-LightGBM Retail-Demand-Forecasting-with-LightGBM Public

    Practical Competition on Kaggle Store Sales - Time Series Forecasting https://www.kaggle.com/competitions/store-sales-time-series-forecasting

    Jupyter Notebook