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Academic Calendar
Jeddah
Sunny
C 35.1
C 32
Khlis
Dust storm
C 44.2
C 31.7
Al Kamil
Sunny
C 40.4
C 33.1
Beta Launch
Colleges
Humanities Colleges

College of Education

Over the past four decades, the College of Education has implemented numerous programs and initiatives across various educational and pedagogical fields. These efforts have significantly contributed to the preparation of many qualified professionals working within the education sector. The College comprises five academic departments: the Department of Special Education, the Department of Curriculum and Instruction, the Department of Educational Technology and Design, the Department of Educational Leadership and Policy, and the Department of Early Childhood Education.
We are pleased to welcome your inquiries via the official email of the College of Education:
COE@UJ.EDU.SA

1974
Date of Establishment
5
The Number of Academic Departments
158
The Number of Faculty Members
38
The Number of Administrative Staff
1276
The Number of Students

    Academic Programs

    Postgraduate
    Master's in Special Education
    Master's in Educational Technology - E-Learning
    Master's in Educational Leadership
    Master's in Foundations of Education
    Master's in Curriculum and Instruction
    About the Programs
    Conditions for admission to the program
    Professional certificates
    Course description
    Employment ratio
    Study Plan
    Program performance indicators

    The College Quality Policy

    Aug 2025

    Media Center

    Research and Innovation

    All Researchs
    Research Breakthrough: Advanced AI System for Early Prediction of Student Success in Digital Learning Environments

    22 Aug 2026

    Researcher Essa E. Almazroei from the Learning Design and Technology Department at the College of Education, University of Jeddah, has published a pioneering scientific study aimed at enhancing student academic performance in online learning environments. The study introduces an innovative framework that integrates robust machine-learning algorithms with Explainable Artificial Intelligence (XAI) techniques. Study Details and Methodology To develop a highly accurate predictive model, the researcher integrated seven diverse educational datasets into a unified analytical pipeline. These data sources included: - Learner demographics. - Assessment history and cumulative grades. - Virtual Learning Environment (VLE) engagement levels and interaction traces. - Course registration and withdrawal patterns. Four supervised machine learning algorithms were trained and evaluated during the research: Logistic Regression, Random Forest, XGBoost, and Multi-Layer Perceptron (MLP). Key Findings and Academic Impact The study demonstrated high efficiency in identifying students at risk of academic underperformance at an early stage. The primary outcomes of the research include: - The XGBoost model emerged as the strongest performer, achieving an outstanding accuracy rate of 95.04%. - Advanced XAI techniques, specifically SHAP and LIME, were employed to ensure the transparency and interpretability of the system's predictive decisions. - Cumulative assessment performance, withdrawal patterns, and engagement intensity were identified as the most influential predictors of student success. - The research provides a reliable "early-warning" system that enables educational institutions to deliver proactive, targeted academic interventions and customized student support. This scientific paper represents a significant step forward in leveraging large-scale educational data to improve institutional decision-making, enhance personalized academic advising, and reduce dropout rates in digital learning systems.
    Researcher 7 Program

    13 Nov 2023

    Research Breakthrough: Advanced AI System for Early Prediction of Student Success in Digital Learning Environments

    22 Aug 2026

    Researcher 7 Program

    13 Nov 2023

    All Researchs

    We Are Proud Of

    The College of Education is pleased to extend its congratulations to the master's student in the Department of Curriculum and Instruction, Saad bin Saleem Al-Hubaishi, and his supervisor, Dr. Nasreen Subhi, for winning the King Saud University Award for Action Research in its third cycle in the field of science teaching and learning.
    Saad bin Saleem Al-Hubaishi
    Recipient of King Saud University's Award for Action Research