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Thomas Dietzen

Top university

4 months ago

PhD position on Domain-Aware Audio Representations for Low-Resource Settings KU Leuven in Belgium

Degree Level

PhD

Field of study

Computer Science

Funding

Available

Deadline

Expired

Country flag

Country

Belgium

University

KU Leuven

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Where to contact

Official Email

Keywords

Computer Science
Signal Processing
Electrical Engineering
Mathematics
Artificial Intelligence
Computer Vision
Python Programming
Domain Adaptation
Computational Complexity
Audio Engineering
Resource Efficiency
Embedded System
Low Power
Machine learning

About this position

This PhD position at KU Leuven, within the EAVISE research group, focuses on developing domain-aware audio representations for low-resource settings. EAVISE is a multidisciplinary group operating at the intersection of artificial intelligence, embedded systems, computer vision, and sound processing, and is part of the Electrical Engineering Department (ESAT) and Computer Science Department at KU Leuven. The project aims to advance audio representation learning by designing model structures and learning objectives that explicitly incorporate domain knowledge, particularly for scenarios where training data is limited and compact models are necessary.

Application areas include predictive maintenance, process monitoring, environmental monitoring, and safety-critical event detection. The research will address challenges in data efficiency, computational efficiency, and domain generalization by disentangling sound representations based on signal characteristics.

The successful candidate will join an international research environment with access to state-of-the-art infrastructure and benefit from close mentorship, participation in courses, workshops, and conferences, and opportunities for collaboration with academic and industrial partners. The position offers a competitive salary or tax-free PhD grant, with an initial one-year appointment and potential extension up to four years.

Candidates are expected to conduct research, contribute to project planning, disseminate findings, assist in supervising Master’s students, and participate in limited teaching activities. Applicants must have a Master’s degree in electrical or computer engineering (or a related field), strong mathematical background, coursework in signal and sound processing, proficiency in Python, and excellent English communication skills. Research experience in sound processing and additional programming skills are advantageous. KU Leuven is committed to diversity and inclusion, providing a supportive and respectful environment for all researchers.

The application deadline is December 3, 2025, and applications must be submitted via the online tool.

Funding details

Available

What's required

Applicants must hold a Master’s degree in electrical or computer engineering or a closely related field, with a solid foundation in mathematics (e.g., matrix algebra) and coursework in digital signal processing, sound processing, and machine learning. Research experience in sound processing is highly valued. Preference is given to candidates with above-average grades, awards, or scientific publications from their thesis work. Proficiency in Python is required; experience with MATLAB or C/C++ is a plus. Excellent English language proficiency and strong oral and written communication skills are required.

How to apply

Submit your application by December 3, 2025 via the online application tool. Include a cover letter, CV with relevant courses and publications, transcripts, and a link to your master’s thesis if available. Applications sent by email will not be considered.

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