Publisher
source

Martin Trapp

Top university

3 months ago

Doctoral Student in Probabilistic Machine Learning KTH Royal Institute of Technology in Sweden

Degree Level

PhD

Field of study

not provided

Funding

Available

Deadline

Expired

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Country

Sweden

University

KTH Royal Institute of Technology

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Where to contact

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About this position

This fully funded PhD position at KTH Royal Institute of Technology is part of the Wallenberg AI, Autonomous Systems and Software Program (WASP), Sweden’s largest research initiative in artificial intelligence and autonomous systems. The successful candidate will join the new research group led by Assistant Professor Martin Trapp, with co-supervision by Professor Henrik Boström, to focus on the reliability and trustworthiness of machine learning models.

The project involves working with open-source, large-scale machine learning models, developing new theoretical and methodological approaches to enhance their reliability, and contributing to open-source libraries. The research aims to publish in top-tier machine learning conferences such as NeurIPS, ICML, ICLR, UAI, and AISTATS. The WASP program offers a dynamic, international research environment with opportunities for collaboration with industry and leading universities worldwide. The graduate school provides a comprehensive training program, including research visits, partner university collaborations, and lectures from visiting scholars, fostering a strong interdisciplinary and international network.

The position is based in Stockholm and comes with a monthly salary according to KTH’s doctoral student salary agreement. Applicants must have a master’s degree or equivalent, strong mathematical and programming skills, a background in machine learning, statistics, linear algebra, and optimization, and some research experience evidenced by peer-reviewed publications. Proficiency in English (equivalent to English B/6) is required.

The position is full-time, initially for one year with possible extensions, and is open to candidates who are goal-oriented, independent, and collaborative. Applications must be submitted through KTH’s recruitment system by December 19, 2025, and should include certified academic transcripts, proof of language proficiency, a CV, a research statement, an application letter, and a list of publications.

The position offers excellent working conditions, employee benefits, and the chance to contribute to cutting-edge research in trustworthy AI.

Funding details

Available

What's required

Applicants must have a second cycle degree (such as a master's degree) or have completed at least 240 higher education credits, with at least 60 at the second-cycle level, or possess equivalent knowledge. Strong mathematical and programming skills are required, as well as a solid background in machine learning, statistics, linear algebra, and optimization. First research experience through peer-reviewed publications is expected. Proficiency in English equivalent to English B/6 is mandatory. Candidates should be goal-oriented, able to work independently and collaboratively, and capable of analyzing and working with complex issues. Only those admitted to postgraduate education may be employed as a doctoral student.

How to apply

Apply through KTH's recruitment system using the provided application link. Ensure your application includes certified copies of diplomas and grades, proof of language requirements, a CV, a research statement, an application letter, and a list of publications. Submit your application by the deadline of December 19, 2025.

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