81 machine-learning-"https:" "https:" "https:" "https:" "https:" "UCL" "UCL" "UCL" uni jobs at Ghent University
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: https://arxiv.org/abs/2508.06112 What we are looking for: You have a Master degree that implies a profound knowledge of statistics, data analysis and scientific programming. You have affinity with
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into the faculty's academic vision can be found in this background note Academic education You will teach various courses in the field of private international law. This assignment comprises the following courses
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of the vacancy can be found in this background document . Academic teaching You will teach various courses in the field of Belgian tort law, and Belgian and European insurance law. This assignment includes
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efforts acquire a particular urgency. Documentation provides evidence for accountability while simultaneously advancing resistance against erasure and denialism. Palestinian documentation practices can be
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an integrated research approach that supports mutual learning, forward thinking, and co-creation within the team. This is not an individual PhD project. There is a set research agenda and pre-established research
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about this vacancy, please contact Prof. Kim Van Tittelboom (kim.vantittelboom@ugent.be , +32(0)9/264 55 40). Where to apply Website https://academicpositions.com/ad/ghent-university/2025/doctoral-fellow
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to contribute their expertise, experience and interests, while jointly shaping an integrated research approach that supports mutual learning, forward thinking, participatory research practices. Please consider
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supervise research projects and acquire the necessary funds from competitive research funding channels: you have demonstrable experience in writing grant proposals; having an adequate understanding
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for this position. For more information about this vacancy, please contact Dr. Ir. Jordy Motte (jordy.motte@ugent.be ) or Prof Pieter Nachtergaele (Pieter.Nachtergaele@UGent.be ). Where to apply Website https
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within the CVAMO Flanders Make Lab at Ghent University. The project focuses on developing machine learning models to predict manufacturability and manufacturing effort directly from CAD geometry