Nasdaq-100 Companies' Hiring Insights: A Topic-based Classification Approach to the Labor Market

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Tác giả: Ehsan Chitsaz, Seyed Mohammad Ali Jafari

Ngôn ngữ: eng

Ký hiệu phân loại: 331.12 Labor market

Thông tin xuất bản: 2024

Mô tả vật lý:

Bộ sưu tập: Báo, Tạp chí

ID: 203924

 Comment: 17 pages, 4 figures, 1 table. Presented at the International Conference on Optimization and Data Science in Industrial Engineering (ODSIE 2023)The emergence of new and disruptive technologies makes the economy and labor market more unstable. To overcome this kind of uncertainty and to make the labor market more comprehensible, we must employ labor market intelligence techniques, which are predominantly based on data analysis. Companies use job posting sites to advertise their job vacancies, known as online job vacancies (OJVs). LinkedIn is one of the most utilized websites for matching the supply and demand sides of the labor market
  companies post their job vacancies on their job pages, and LinkedIn recommends these jobs to job seekers who are likely to be interested. However, with the vast number of online job vacancies, it becomes challenging to discern overarching trends in the labor market. In this paper, we propose a data mining-based approach for job classification in the modern online labor market. We employed structural topic modeling as our methodology and used the NASDAQ-100 indexed companies' online job vacancies on LinkedIn as the input data. We discover that among all 13 job categories, Marketing, Branding, and Sales
  Software Engineering
  Hardware Engineering
  Industrial Engineering
  and Project Management are the most frequently posted job classifications. This study aims to provide a clearer understanding of job market trends, enabling stakeholders to make informed decisions in a rapidly evolving employment landscape.
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