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This repository contains results of the completed tasks for the Quantium Data Analytics Virtual Experience Program by Forage, designed to replicate life in the Retail Analytics and Strategy team at Quantium, using Python.
This project uses data analytics and machine learning to assess and predict credit risk. It includes data preprocessing, exploratory analysis, feature engineering, and model building with Python, Pandas, and Scikit-learn to help financial institutions make informed decisions.
This project involves a comprehensive data analysis of stock market trends and performance. The analysis aims to uncover patterns, trends, and insights that can aid in making informed investment decisions. By leveraging various data analytics techniques, this project provides valuable visualizations and interpretations of stock market data.