12 high-performance-"https:"-"CIPMM---Systemic-Neurophysiology" PhD positions in Switzerland
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applications Improving model architectures, prompting strategies, and retrieval systems for high-stakes environments Conducting pilot evaluations with judicial partners to study how AI tools perform in real
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Perform high throughput metabolomics profiling using a unique framework developed in the lab. Analyze and interpret metabolomics data to derive experimentally testable hypotheses Support and preparation
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central objective is to achieve a deep, mechanistic understanding of the processes that govern electrochemical performance and cycling stability. Your research will focus on elucidating and engineering
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Perform high throughput metabolomics profiling using a unique framework developed in the lab. Analyze and interpret metabolomics data to derive experimentally testable hypotheses Support and preparation
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-built instrumentation for confocal microscopy, carry out optically detected magnetic resonance experiments with single-spin quantum sensors, and perform accompanying spin-dynamics simulations. The project
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is essential. Perform in vivo mouse studies using CRISPR-engineered cancer cell lines Design, perform, and analyse in vivo CRISPR pooled screens Perform high throughput metabolomics profiling using a
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poorly understood. This PhD project addresses that gap. Sitting at the intersection of clinical simulation, multimodal AI, and human factors research, the successful candidate will design high-fidelity ICU
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the Swiss National Science Foundation. This collaborative project (EPF Lausanne, University of Lausanne, ETH Zurich) aims to improve the performance of joint arthroplasty through the use of novel materials
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and uncertainty (e.g. demand evolution, renewable generation) influence system performance and trade-offs. The research will combine analytical modelling with data-driven and AI-based methods
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microorganisms can be used to produce high-performance biopolymers. The scalability and non-seasonality of this process will enable the sustainable manufacturing of biopolymer filaments, films and 3D structures