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June 19, 20260 citationsOpen Access

Intelligent-Based Career Guidance Information Management

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DED. O. EgeteBEB. I. EleDAD. U. Ashishie

Key Points

  • This research aims to create an AI-driven career guidance system to enhance the personalization and accessibility of career counseling.
  • Developed a web-based career guidance system using Python, Flask, and TensorFlow for back-end functionalities.
  • Implemented a user registration system and skill selection with dynamic recommendations via questionnaires.
  • Utilized machine learning algorithms to refine career suggestions based on user input.
  • The system successfully provides tailored career recommendations, enhancing user engagement and decision-making.
  • User feedback indicates increased satisfaction compared to traditional counseling methods, emphasizing the system's effectiveness.
  • Demonstrated real-time updates and adaptability in recommendations based on individual skills and interests.

Abstract

This study develops a computerized career guidance information management system to overcome the limitations of traditional career counseling methods, which often lack accessibility, real-time updates, and personalization. The system uses AI and ML to provide tailored career recommendations based on users’ skills, interests, and questionnaire responses. The web-based platform, implemented using Python (Flask, TensorFlow) for the backend and HTML, CSS, and JavaScript for the frontend, features user registration, skill selection, and dynamic recommendation refinement through questionnaires. The recommendation engine employs machine learning algorithms to deliver accurate, adaptive career suggestions. This research bridges the gap between conventional counseling and modern technologies, offering a scalable, data-driven career guidance solution. This study highlights the potential of AI-powered systems to provide personalized, accessible, and efficient career advice in alignment with digital education advancements

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Cite This Study

Egete et al. (2026) studied this question.

synapsesocial.com/papers/6a34ddaf65a5b0777af2d560https://doi.org/10.5281/zenodo.20735223
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