A Conversation about Ethical AI in Recruitment: Mitigating Algorithmic Bias
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This research explores the ethical complexities and strategic implementation of artificial intelligence within modern recruitment processes. While these technologies offer enhanced efficiency and standardized evaluations, they frequently inherit and amplify historical biases found in original training data. The research argues that true fairness cannot be achieved through technical adjustments alone but requires a comprehensive sociotechnical approach involving human oversight and transparent governance. By examining industry case studies, the research outlines critical intervention points such as data quality audits, continuous monitoring, and rigorous vendor management. Ultimately, the research serves as a framework for organizations to mitigate discriminatory outcomes while maintaining the operational benefits of automated hiring.
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