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cross-validation-score

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I developed a sophisticated ML model using LLMs to predict user preferences in chatbot interactions.implemented a comprehensive data preprocessing pipeline,including feature extraction and encoding,to optimize performance. conducted extensive hyperparameter tuning and evaluation, enhancing accuracy and in AI-driven conversational systems.

  • Updated Oct 25, 2024
  • Jupyter Notebook

In this project, I have developed a Machine Learning model to predict whether users will click on ads. By analyzing various characteristics of users who click on ads, we can gain valuable insights and optimize ad campaigns for better engagement.

  • Updated Jun 20, 2023
  • Jupyter Notebook

Exploring a music dataset by examining correlations between numerical variables, running a principal component analysis for dimensionality reduction and finally fitting both scikit learn Decision Tree Classification and Logistic Regression models to compare their performance.

  • Updated Feb 1, 2020
  • Jupyter Notebook

A production-ready Email Spam Classifier built using Machine Learning and Natural Language Processing (NLP). This project classifies emails as Spam or Not Spam (Ham) using a clean, modular, and testable codebase.

  • Updated Dec 19, 2025
  • Python

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