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Kaggle Playground Series – Model Ranking Competition

🏁 Overview

This repository documents my participation in the Kaggle Playground Series – Model Ranking competition. I joined this competition primarily to test my knowledge, sharpen my machine learning skills, and most importantly, to have fun while experimenting with different modeling approaches.

🎯 Goal

The objective of the competition was to build a model that accurately ranks inputs according to given criteria. It served as a great opportunity to explore a practical ML problem in a low-stakes, learning-friendly environment.

πŸ“ˆ Result

I ranked #2956 on the final leaderboard.

While this wasn’t a top-ranking result, the competition gave me valuable hands-on experience with:

  • Data preprocessing
  • Model selection and tuning
  • Evaluation metrics for ranking problems
  • Experimentation and iteration strategies

πŸ’‘ Why I Participated

  • To challenge myself with a real-world-style ML problem.
  • To explore new libraries, tools, and techniques.
  • To enjoy the process of building and refining models in a competitive setting.

πŸ”§ Tech Stack

  • Python
  • scikit-learn / XGBoost / LightGBM
  • pandas / NumPy / matplotlib / seaborn
  • Jupyter Notebooks

πŸ“‚ Contents

This repo includes:

  • Kaggke Notebook with my experiments and approach
  • Scripts for data preprocessing and model training
  • Notes and observations from the competition
  • Dataset used
  • Output and predictions