Conference paper 2023

Characterizing the Job-task-skill Pattern of Job Requirements with Job Advertisement Mining

ACM International Conference Proceeding Series
Conference · pp. 139-147
Abstract

Understanding job requirements is essential for establishing and optimizing employability-oriented education programs. Most relevant research focus on clarifying the skill requirement of an occupational field. In this research, we argue that job tasks serve as a bridge between a job and the required skills, and we provide a method for investigating the job-task-skill pattern of job requirements using text mining on publicly available job advertisements. To provide this, we: 1) collect data on thousands of job advertisements through web crawling and scraping; 2) categorize the jobs through title analysis; 3) identify the topic of both tasks and skills through word co-occurrence network clustering; and 4) systematically analyze the characteristics and internal relationships between job roles, tasks, and the required skills. A test case was conducted in the context of China's big data sector, and the findings show that the proposed strategy is viable, practical, and instructive. © 2023 ACM.

Keywords

Author Keywords

employability text mining job advertisements Job requirements Word co-occurrence network

Index Keywords

Employment employability Education programmes Data mining Research focus Web crawler Co-occurrence networks Job advertisement Job requirement Task skill Text-mining Word co-occurrence Word co-occurrence network
Author Affiliations
Shandong Jiaotong University, Jinan, Shandong, China
The Second Hospital of Weihai, Weihai, Shandong, China
Funding & Acknowledgements
Shandong Jiaotong University, SDJTU
Grant: R201907
We thank LetPub (www.letpub.com) for linguistic assistance and pre-submission expert review. This work was supported by Research Fund Project of Shandong Jiaotong University under Grant number: R201907.
Shandong Jiaotong University, SDJTU
We thank LetPub (www.letpub.com) for linguistic assistance and pre-submission expert review. This work was supported by Research Fund Project of Shandong Jiaotong University under Grant number: R201907.
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