240 coding-"https:"-"Prof"-"FEMTO-ST" "https:" "https:" "https:" "https:" "UCL" uni jobs at CNRS
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Physique des 2 Infinis (LP2I) in Bordeaux." Where to apply Website https://concourschercheurs2026.dsi.cnrs.fr/index.php?langue=uk Requirements Research FieldPhysicsEducation LevelPhD or equivalent
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the laboratories of his/her choice and justify it within the proposal." Where to apply Website https://concourschercheurs2026.dsi.cnrs.fr/index.php?langue=uk Requirements Research FieldEnvironmental scienceEducation
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to develop technological processes. The Candidate should indicate the laboratories of his/her choice and justify it within the proposal." Where to apply Website https://concourschercheurs2026.dsi.cnrs.fr
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/she could perform her/his research activities." Where to apply Website https://concourschercheurs2026.dsi.cnrs.fr/index.php?langue=uk Requirements Research FieldEnvironmental scienceEducation LevelPhD
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geomatics, spatial modelling and simulation, and model exploration and evaluation (OpenMole platform https://openmole.org/ ). The recruited individual will also work directly with the project's entomologists
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tested on cancer cell lines. Where to apply Website https://emploi.cnrs.fr/Candidat/Offre/UMR7042-PHICOM-001/Candidater.aspx Requirements Research FieldChemistryEducation LevelMaster Degree or equivalent
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, and IT platforms to ensure the smooth running of the project. https://www.get.omp.eu/ Travel to major research facilities in Europe or to other laboratories will be required, as will participation in
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greatly enhances the number of codes that can be generated from a single device.The recruited candidate will perform numerical investigations of plasmonic systems with different types of disorders
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take place at Laboratoire Albert Fert Where to apply Website https://emploi.cnrs.fr/Candidat/Offre/UMR137-ABDANA-013/Candidater.aspx Requirements Research FieldPhysicsEducation LevelPhD or equivalent Research
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for publication -APL Photon. March 2025) - Electromagnetic design of microcavities using finite element simulation codes. Main objective: to obtain a predictive model for optimizing light–matter coupling as a