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Research Fellow (Process Control/Control Science & Engineering/Applied Mathematics/Machine Learning)
Requirements: Obtained a PhD degree (or will be awarded PhD degree shortly) in Process Control, Control Science And Engineering, Applied Mathematics, Machine Learning or related fields. An excellent track record
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Deutsches Zentrum für Luft - und Raumfahrt (DLR) | Koln, Nordrhein Westfalen | Germany | 3 months ago
4 Apr 2024 Job Information Organisation/Company Deutsches Zentrum für Luft - und Raumfahrt (DLR) Research Field Technology Engineering Researcher Profile Recognised Researcher (R2) Established Researcher (R3) Country Germany Application Deadline 7 Aug 2024 - 00:00 (UTC) Type of Contract To be...
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Organisation. The multidisciplinary school boasts active research groups in fields such as discrete mathematics, geometry, applied mathematics, fluid dynamics, and machine learning, and supports extensive
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PhD degree in Computer Science (And Engineering), Electronic Engineering, Applied Mathematics, Perception Sciences, etc. Have good technical reading, writing and programming skills. Have good experience
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Details Posted: 14-Jun-24 Location: Waco, Texas Salary: Open Categories: Academic/Faculty Mathematics/Statistics Internal Number: 5333379 Postdoctoral Fellow - Mathematics Job Identification: 17006
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and Mathematical Sciences is seeking a Research Fellow to contribute to a project focused on large random matrices and machine learning. Key Responsibilities: Conducting research in one or more of the
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nonautonomous dynamical systems, spectral analysis, machine learning, data-driven dynamics, stability/perturbation theory/rigorous numerics. Possible applications of the new theory include the analysis
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p.a. plus 17% super Join the ARC Centre for the Mathematical Analysis of Cellular Systems Develop and apply statistical/machine learning methods to analyse biological data. Salary packaging, subsidised
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multidisciplinary teams of mathematical, computational, and biological scientists to develop and apply statistical and machine learning methods for analyzing complex and large-scale biological data. This position
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to data-driven (machine-learned) representations. In particular, we are interested in the joint applicability of such models and to what extent simpler models (possibly based on machine learning) can be