40 data-"https:" "https:" "https:" "https:" "https:" "https:" "https:" "University of Kent" positions at Linköping University
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NAISS, the National Academic Infrastructure for Supercomputing in Sweden, provides academic users with high-performance computing resources, storage capacity, and data services. NAISS is hosted by
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world. Read more about the division here: https://liu.se/en/organisation/liu/isy/rt . For more information about ISY, go to: https://liu.se/en/article/open-positions-at-isy . The employment When taking up
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around the world. Read more about the division here: https://liu.se/en/organisation/liu/isy/rt . For more information about ISY, go to: https://liu.se/en/article/open-positions-at-isy . The employment When
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/rt . For more information about ISY, go to: https://liu.se/en/article/open-positions-at-isy . The employment When taking up the post, you will be admitted to the program for doctoral studies. More
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world. Read more about the division here: https://liu.se/en/organisation/liu/isy/rt . For more information about ISY, go to: https://liu.se/en/article/open-positions-at-isy . The employment When taking up
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collaborations both with industry and other research groups around the world. Read more about the division here: https://liu.se/en/organisation/liu/isy/rt . For more information about working at ISY, please visit
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. Information about the workplace: https://liu.se/en/organisation/liu/ifm https://liu.se/en/research/m2lab The employment This employment is a temporary contract of two years with the possibility of extension up
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application! We are looking for a PhD student in Statistics with placement at the Division of Statistics and Machine Learning, Department of Computer and Information Science. Your work assignments As a PhD
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application! We are looking for a postdoctoral researcher to work on the fundamentals of knowledge graphs and virtual data integration. Work assignments You will actively participate and lead work tasks in two
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, where AI models are trained without having all data in a single computer. This makes it possible to use larger datasets for training, without sending sensitive data between hospitals. The goal is to