Human Resources Attrition Project

Predicting employee tenure through regression analysis

Python Pandas NumPy Statsmodels Jupyter
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Project Overview

This project explores the relationship between career progression factors and employee retention using the "HR-Employee-Attrition" dataset. The main goal is to understand how factors such as job level, years in a current role, years since the last promotion, monthly income, and stock option levels influence the length of tenure at a company. The analysis employs both statistical tests (T-tests) and regression models to draw insights into these relationships.

Objectives

Key Results

Methodology

Skills Demonstrated

Technologies Used

Python Pandas NumPy Matplotlib Seaborn Statsmodels Jupyter

GitHub Repository

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