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therapeutic strategies. Perform bacterial culture, genetics, and molecular cloning, such as targeted gene deletion andoverexpression. Develop and run high-throughput fluorescence- and luminescence-based
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), one of Canada's leading neuroscience research centres. The successful candidate will develop next-generation human experimental models to investigate the cellular and molecular mechanisms underlying
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mouse models relevant to MS pathogenesis and recovery. Performing and overseeing cellular and molecular studies involving macrophages, microglia, and other CNS-resident or infiltrating immune cells
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data analysis and programming (Igor Pro, Python, MATLAB, etc.). Prior experience with molecular biology or protein biochemistry (cloning, expression, purification) is highly desirable but not mandatory
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. in Chemistry, Molecular Biology, Biochemistry, Cell Biology, Bioengineering, Material Science, or a related field. Deep technical expertise in recombinant protein design, cloning, and FPLC/HPLC protein
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University of British Columbia Department of Surgery | Northern British Columbia Fort Nelson, British Columbia | Canada | about 2 months ago
) in Immunology, Biomedical Engineering, Molecular Biology, Biochemistry, or a related discipline A strong publication record demonstrating research excellence. A minimum of one first author publication
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multidisciplinary team integrating molecular biology, genomics, epigenomics, microbiome science, proteomics, and clinical research. The position will focus on the development and evaluation of low-input whole genome
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ovarian carcinomas. This work will form the basis of prevention, treatment, and etiological understanding of disease. The successful candidate will work within a multidisciplinary team integrating molecular
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integrates clinical, molecular, and real-world data with emerging computational approaches, including large language models, predictive modelling, and multi-omics data integration. The lab coordinates and
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at the molecular and tissue level, and how its disruption contributes to hereditary cancers and pediatric malignancies (https://bcchr.ca/maxwell-lab ). Key areas include: Mechanisms of cell division fidelity