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Postdoctoral Researcher – Machine Learning and Explainable AI

Job in Doha, Baladīyat ad Dawḩah, Qatar
Listing for: University of Doha for Science & Technology
Full Time position
Listed on 2026-02-20
Job specializations:
  • IT/Tech
    Data Scientist, Machine Learning/ ML Engineer, AI Engineer, Artificial Intelligence
  • Research/Development
    Data Scientist, Artificial Intelligence
Salary/Wage Range or Industry Benchmark: 400000 - 600000 QAR Yearly QAR 400000.00 600000.00 YEAR
Job Description & How to Apply Below

Overview

University of Doha for Science and Technology (UDST), officially established by Emirati Decision No. 13 of 2022, is Qatar’s first national applied university and the country’s premier destination for academic, technical, and professional education. With more than 9,000 students and 700 staff, UDST offers over 70 bachelor’s, master’s, diploma, and certificate programs across its five colleges:
Business, Computing & Information Technology, Engineering & Technology, Health Sciences, and General Education. In addition, UDST houses specialized training centers that serve both individuals and industry.

UDST is recognized for its student-centered learning, cutting‑edge facilities, and applied, experiential approach. The university is a growing hub for research and innovation, bridging academia and industry, and supports Qatar National Vision 2030.

UDST Center of Excellence – Artificial Intelligence and Innovation is dedicated to advancing cutting‑edge AI research and developing practical solutions that tackle real‑world challenges. Its mission is to drive scientific progress and technological innovation in intelligent systems, contributing to Qatar’s transition to a knowledge‑based economy.

We are seeking an outstanding Postdoctoral Researcher to join our team at the Center of Excellence in Artificial Intelligence and Innovation. This role focuses on conducting applied research in machine learning, federated learning, and explainable AI (XAI) with real‑world applications in healthcare, energy, and smart infrastructure. The researcher will develop privacy‑preserving machine learning systems, create interpretable AI solutions, and deploy models on edge and cloud platforms.

This is an excellent opportunity to advance trustworthy AI research while contributing to Qatar’s innovation priorities and digital transformation.

Key Responsibilities
  • Conduct applied research in machine learning, federated learning, and explainable AI across domains such as healthcare, energy, and smart infrastructure
  • Develop privacy‑preserving machine learning systems and interpretable AI solutions that ensure transparency and trust
  • Deploy machine learning models on edge and cloud platforms, ensuring robustness and scalability
  • Publish research findings in top‑tier peer‑reviewed conferences and journals
  • Lead and contribute to high‑impact research projects aligned with the Center’s priorities
  • Ensure reproducibility and documentation of research through best practices in code and data management
  • Integrate XAI techniques to ensure AI solutions meet ethical standards and domain‑specific requirements
  • Collaborate with internal and external stakeholders on interdisciplinary research initiatives
  • Contribute to research proposals and external funding applications to support the Center’s growth
  • Mentor junior researchers, graduate students, and research assistants
Required Qualifications
  • PhD in Computer Science, Artificial Intelligence, Machine Learning, or a closely related field
  • Demonstrated research experience in machine learning, with focus on federated learning, explainable AI, or privacy‑preserving ML
  • Strong publication record in peer‑reviewed journals and top‑tier AI/ML conferences (e.g., NeurIPS, ICML, ICLR, AAAI, CVPR, KDD)
  • Expertise in deep learning frameworks (PyTorch, Tensor Flow, Keras) and classical ML tools (scikit‑learn, XGBoost)
  • Strong background in machine learning, federated learning, or explainable AI
  • Experience with evaluating AI models, benchmark design, and assessment methodologies
  • Experience with explainable AI libraries (e.g., SHAP, LIME, Captum) and interpretability techniques
  • Experience with federated learning frameworks (e.g., Flower, Tensor Flow Federated) or privacy‑preserving ML
  • Proven ability to conduct independent research and contribute to collaborative research teams
  • Excellent analytical, problem‑solving, and communication skills, including research presentations and technical writing
  • Proficiency with version control systems (Git) and reproducible research practices
  • Experience with computational resources and high‑performance computing environments
  • Fluency in written and spoken English
Preferred Qualifications
  • Experience…
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