Stereotypes in Large Language Models: Demographic Biases in Hiring Decisions

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dc.contributor.author Drushchak, Nazarii
dc.date.accessioned 2024-08-22T10:12:47Z
dc.date.available 2024-08-22T10:12:47Z
dc.date.issued 2024
dc.identifier.citation Drushchak Nazarii. Stereotypes in Large Language Models: Demographic Biases in Hiring Decisions. Ukrainian Catholic University, Faculty of Applied Sciences, Department of Computer Sciences. Lviv 2024, 57 p. uk
dc.identifier.uri https://er.ucu.edu.ua/handle/1/4665
dc.language.iso en uk
dc.subject Stereotypes uk
dc.subject Large Language Models uk
dc.subject Demographic Biases uk
dc.subject Hiring Decisions uk
dc.title Stereotypes in Large Language Models: Demographic Biases in Hiring Decisions uk
dc.type Preprint uk
dc.status Публікується вперше uk
dc.description.abstracten This thesis proposes a methodology for assessing demographic biases in hiring systems powered by artificial intelligence (AI), evaluates existing bias mitigation techniques, and conducts a comparative analysis between English and Ukrainian at all stages. Our study highlights the importance of Responsible AI practices in shaping fair and equitable hiring processes. We initiated this research by creating a dataset of anonymized CVs and job de- scriptions. We then developed a robust framework for benchmarking AI-assisted hiring systems to evaluate potential biases across a range of categories called pro- tected groups. Having detected biases across these groups, we experimented with the known pre- and post-processing mitigation techniques to alleviate the level of bias. Our results show that bias mitigation remains a complex and multifaceted chal- lenge. While certain strategies demonstrated positive results, they haven’t fully fixed the bias problem in AI-assisted hiring. Our work is a foundational step towards fostering fairness and inclusivity within AI-driven recruitment systems. We aim to continue this research, exploring novel approaches to handle bias problems and promote equitable hiring practices. uk


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