Skill matching at scale: freelancer-project alignment for efficient multilingual candidate retrieval

September 18, 2024 ยท Declared Dead ยท ๐Ÿ› HR@RecSys

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Authors Warren Jouanneau, Marc Palyart, Emma Jouffroy arXiv ID 2409.12097 Category cs.CL: Computation & Language Cross-listed cs.IR, cs.LG, cs.SI Citations 1 Venue HR@RecSys Last Checked 5 months ago
Abstract
Finding the perfect match between a job proposal and a set of freelancers is not an easy task to perform at scale, especially in multiple languages. In this paper, we propose a novel neural retriever architecture that tackles this problem in a multilingual setting. Our method encodes project descriptions and freelancer profiles by leveraging pre-trained multilingual language models. The latter are used as backbone for a custom transformer architecture that aims to keep the structure of the profiles and project. This model is trained with a contrastive loss on historical data. Thanks to several experiments, we show that this approach effectively captures skill matching similarity and facilitates efficient matching, outperforming traditional methods.
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