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  4. KARRIEREWEGE: A large scale Career Path Prediction Dataset
 
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2025
Conference Paper
Title

KARRIEREWEGE: A large scale Career Path Prediction Dataset

Abstract
Accurate career path prediction can support many stakeholders, like job seekers, recruiters, HR, and project managers. However, publicly available data and tools for career path prediction are scarce. In this work, we introduce KARRIEREWEGE, a comprehensive, publicly available dataset containing over 500k career paths, significantly surpassing the size of previously available datasets. We link the dataset to the ESCO taxonomy to offer a valuable resource for predicting career trajectories. To tackle the problem of free-text inputs typically found in resumes, we enhance it by synthesizing job titles and descriptions resulting in KARRIEREWEGE+. This allows for accurate predictions from unstructured data, closely aligning with real-world application challenges. We benchmark existing state-of-the-art (SOTA) models on our dataset and a prior benchmark and observe improved performance and robustness, particularly for free-text use cases, due to the synthesized data.
Author(s)
Senger, Elena
Fraunhofer-Zentrum für Internationales Management und Wissensökonomie IMW  
Campbell Borges, Yuri Cassio
Fraunhofer-Zentrum für Internationales Management und Wissensökonomie IMW  
Goot, Rob van der
IT University of Copenhagen, Department of Computer Science
Plank, Barbara
Mainwork
COLING 2025, 31st International Conference on Computational Linguistics. Proceedings of the Industry Track  
Conference
International Conference on Computational Linguistics 2025  
Open Access
File(s)
Download (593.56 KB)
Rights
CC BY 4.0: Creative Commons Attribution
DOI
10.24406/publica-4673
Language
English
Fraunhofer-Zentrum für Internationales Management und Wissensökonomie IMW  
Keyword(s)
  • Natural Language Processing

  • Synthetic Data

  • Career Path Prediction

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