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agreement. Apply latest 17 May 2024. Project description and working tasks The connection between optimization and machine learning is at the heart of many recent breakthroughs in artificial intelligence and
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in machine learning for continuous and discrete structures. The department has been growing rapidly in recent years. An inclusive and participatory environment are key elements in our growth. The 60
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machine learning (ML). The work involves collecting and processing data, setting up and configuring development environments, and providing services for benchmarking, i.e., standardized performance
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systems, connected devices, and distributed applications poses several challenges in dealing with petabytes of data in diverse resource-constrained environments. Federated machine learning (FML) is a
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of topics in modern machine learning research, including geometric deep learning, non-convex optimization problems and federated learning. In addition, this project is deeply connected with
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service, or similar circumstances, as well as clinical practice or other forms of appointment/assignment relevant to the subject area. Postdoctoral fellows who are to teach or supervise must have taken
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will be predominantly conducted in English. Experience in broad areas of expertise, including machine learning algorithm development, statistical methods, distributed learning, and cybersecurity, is
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the development of new techniques for rehabilitation and functional impairments of injuries to the upper extremity supported by machine learning and neural networks. The position is an initiative within
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etc.) Automated reasoning Machine learning Candidates are expected to have good knowledge in Artificial Intelligence and good programming skills in some of the following: Python, PyTorch library, OpenAI
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organizations, military service, or similar circumstances, as well as clinical practice or other forms of appointments/assignments relevant to the subject area. Postdoctoral fellows who wish to teach or supervise