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November 13, 2025International Journal of Advanced Research in Science Communication and Technology0 citationsOpen Access

AI-Powered Recruitment Systems: Conversational Assessment and Predictive Shortlisting

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DPDhanashri PatilKAKaveri AHERABAtharva Bhoite

Key Points

  • Predictive analytics improves recruitment efficiency, reducing bias in candidate evaluations.
  • AI-driven systems utilize data privacy measures to protect sensitive candidate information.
  • Automated skill matching and voice-based interviews streamline the hiring process effectively.
  • Integrating AI in human resource management can lead to fairer and more efficient recruitment practices.

Abstract

The rapid adoption of Artificial Intelligence (AI) in Human Resource Management (HRM) demands a unified, objective framework to address recruitment challenges such as human bias, lengthy cycles, and inconsistent candidate evaluation. This survey details an end-to-end AI-powered recruitment solution built upon a Django Job Portal and functioning across three stages. The pipeline begins with Automated Skill Matching using NLP and semantic models for high-accuracy initial shortlisting. Candidates exceeding the relevance threshold proceed to the core innovation: the AI-Powered Voice-Based Interview. This module utilizes a cascaded Speech-to-Text (STT), Large Language Model (LLM), and Text-to-Speech (TTS) architecture to simulate dynamic, conversational assessments that adapt questions based on the candidate’s technical responses. Crucially, the system employs locally-hosted LLMs, such as Ollama, for in-house inference. This architectural choice ensures superior data privacy and security by preventing sensitive candidate data from being transferred to external cloud APIs, while simultaneously achieving greater cost-efficiency for high-volume recruitment. By integrating predictive analytics for final shortlisting, this research provides a comprehensive blueprint for building scalable, unbiased, and equitable hiring ecosystems that enhance both operational efficiency and ethical accountability.

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Cite This Study

Patil et al. (2025) studied this question.

synapsesocial.com/papers/692523c1c0ce034ddc354cb8https://doi.org/10.48175/ijarsct-29846
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Also Consider

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  5. 5AI-Powered Automated Resume Screening and Job Matching System Using NLP and Machine Learning2025