Steve: LLM Powered ChatBot for Career Progression

Fuente: arXiv
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Hauptverfasser: Renji, Naveen Mathews, Rao, Balaji, Lipizzi, Carlo
Format: Preprint
Veröffentlicht: 2025
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author Renji, Naveen Mathews
Rao, Balaji
Lipizzi, Carlo
author_facet Renji, Naveen Mathews
Rao, Balaji
Lipizzi, Carlo
contents The advancements in systems deploying large language models (LLMs), as well as improvements in their ability to act as agents with predefined templates, provide an opportunity to conduct qualitative, individualized assessments, creating a bridge between qualitative and quantitative methods for candidates seeking career progression. In this paper, we develop a platform that allows candidates to run AI-led interviews to assess their current career stage and curate coursework to enable progression to the next level. Our approach incorporates predefined career trajectories, associated skills, and a method to recommend the best resources for gaining the necessary skills for advancement. We employ OpenAI API calls along with expertly compiled chat templates to assess candidate competence. Our platform is highly configurable due to the modularity of the development, is easy to deploy and use, and available as a web interface where the only requirement is candidate resumes in PDF format. We demonstrate a use-case centered on software engineering and intend to extend this platform to be domain-agnostic, requiring only regular updates to chat templates as industries evolve.
format Preprint
id arxiv_https___arxiv_org_abs_2504_03789
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Steve: LLM Powered ChatBot for Career Progression
Renji, Naveen Mathews
Rao, Balaji
Lipizzi, Carlo
Computers and Society
Multiagent Systems
The advancements in systems deploying large language models (LLMs), as well as improvements in their ability to act as agents with predefined templates, provide an opportunity to conduct qualitative, individualized assessments, creating a bridge between qualitative and quantitative methods for candidates seeking career progression. In this paper, we develop a platform that allows candidates to run AI-led interviews to assess their current career stage and curate coursework to enable progression to the next level. Our approach incorporates predefined career trajectories, associated skills, and a method to recommend the best resources for gaining the necessary skills for advancement. We employ OpenAI API calls along with expertly compiled chat templates to assess candidate competence. Our platform is highly configurable due to the modularity of the development, is easy to deploy and use, and available as a web interface where the only requirement is candidate resumes in PDF format. We demonstrate a use-case centered on software engineering and intend to extend this platform to be domain-agnostic, requiring only regular updates to chat templates as industries evolve.
title Steve: LLM Powered ChatBot for Career Progression
topic Computers and Society
Multiagent Systems
url https://arxiv.org/abs/2504.03789