Ethics and discrimination in artificial intelligence-enabled recruitment practices

Этика и дискриминация в практиках найма с использованием искусственного интеллекта
Zhisheng Chen
2023-09-13

AI-enabled recruitmentalgorithmic biasalgorithmic discriminationalgorithmic transparencyethical governance
Abstract This study aims to address the research gap on algorithmic discrimination caused by AI-enabled recruitment and explore technical and managerial solutions. The primary research approach used is a literature review. The findings suggest that AI-enabled recruitment has the potential to enhance recruitment quality, increase efficiency, and reduce transactional work. However, algorithmic bias results in discriminatory hiring practices based on gender, race, color, and personality traits. The study indicates that algorithmic bias stems from limited raw data sets and biased algorithm designers. To mitigate this issue, it is recommended to implement technical measures, such as unbiased dataset frameworks and improved algorithmic transparency, as well as management measures like internal corporate ethical governance and external oversight. Employing Grounded Theory, the study conducted survey analysis to collect firsthand data on respondents’ experiences and perceptions of AI-driven recruitment applications and discrimination.
1
AI-enabled recruitment can improve recruitment quality and efficiency while reducing transactional work.
2
Algorithmic bias in AI-enabled recruitment can produce discriminatory hiring practices based on gender, race, color, and personality traits.
3
Recommended governance measures include internal corporate ethical governance and external oversight, informed by survey evidence on users’ experiences and perceptions.
4
Recommended technical safeguards include unbiased dataset frameworks and greater algorithmic transparency.
5
The study attributes recruitment algorithmic bias to limited raw datasets and biases among algorithm designers.

AI-enabled recruitment practices

Algorithmic discrimination and bias in AI-enabled recruitment, including its causes and technical and managerial mitigation measures

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2023-09-13
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Zhisheng Chen
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