Data-Driven Strategies for Sustainable
Employee Retention:
Leveraging Machine Learning
to Predict and Prevent Attrition
Shobhanam Krishna* and Debajyoti Borah**
PUBLISHED : 26 Feb 2024
Abstract
Employee attrition is a persistent concern for businesses since it has an adverse effect on
production, economic conditions, and morale. With rising attrition rates, particularly in sectors
like information technology, understanding and predicting employee turnover is critical for
organizational success and sustainability. The primary objective of this research is to employ
machine learning techniques for understanding, predicting, and mitigating attrition. This study
is dedicated to thoroughly exploring attrition dynamics using a dataset crafted to closely resemble
real-world HR scenarios within a fictional organization. This study utilizes a machine learning
technique to evaluate the effectiveness of three classifiers in predicting employee attrition:
Logistic Regression, SVM, and Random Forest. Performance evaluation is done using the
confusion matrix and AUC-ROC curve. The study reveals that on the test set, the logistic
regression framework performs the best among all. The paper emphasizes the significance of
developing effective retention strategies that tackle the root causes of attrition to reduce the
attrition rate, enhance employee satisfaction, and create a more stable work environment.
Incorporating the strategic implications presented in this paper can result in sustained growth
and success for organizations while fostering sustainable economic, social, and environmental
advancement. Additionally, future research could explore other machine learning methods,
such as unsupervised learning and reinforcement learning, to gain a more comprehensive
understanding of employee behavior and motivating factors.
Key Words
Employee attrition, Logistic regression, Machine learning, Sustained growth,
Support Vector Machine (SVM)
Author Biography
Shobhanam Krishna Research Scholar, Department of Organizational Behaviour and Human Resources, Indian Institute of Management
Shillong, Shillong, India; and is the corresponding author. E-mail:
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Debajyoti Borah Officer, Department of Technology Management, Defence Institute of Advanced Technology, Pune, India.
E-mail:
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