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observational data, and compare the results with those from other emulators of similar datasets (e.g. Gaussian Process methods by the project lead). These results will inform the IPCC AR7, and adaptation and
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these projections with observational data, and compare the results with those from other emulators of similar datasets (e.g. Gaussian Process methods by the project lead). These results will inform the IPCC AR7, and
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using a range of methods including cutting-edge single cell and imaging techniques. Ultimately this information will provide fundamental insights into human biology and may in the future lead to improved
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an interdisciplinary team of researchers as well as the Centre’s academic, lived-experience, and community partners. Additionally, you will work with researchers in the Centre’s Theory & Methods Hub and Communications
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2025), the team developed playful, creative and inclusive methods for working with neurodivergent children and their families, and conducted the bulk of data collection. The primary role of the PDRA is
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for year-two of the 24-month Sensory Lives study. In year one (January-December 2025), the team developed playful, creative and inclusive methods for working with neurodivergent children and their families
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candidate will help to support the team to formally document algorithms within a quality management system. EpiNav™ provides state-of-the-art computer-assisted support for the planning of stereotactic
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for a motivated and ambitious postdoctoral researcher with a background in adolescent mental health, experience sampling methods, digital phenotyping, or related disciplines. In your role, you will lead
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responsible for the development and implementation of a case study in a US or European city (to be confirmed), using ethnographic and qualitative case study methods under a cross-cultural research design
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in neurodevelopment. This role will focus on data analysis and methods development to develop a better understanding of the mechanisms underpinning typical and altered neurodevelopment, brain structure