20 Apr
Data Scientist/MLOps/Docker/ECS/Image Processing Direct end client
California, Southsanfrancisco , 94080 Southsanfrancisco USA

Vacancy expired!

Required skillsStrong experience in data science and Machine learningConvert existing algorithms to containerized processing units (docker) using pythonDeploy Docker containers to ECS (AWS) and KubernetesWrite Python code to execute containerized machine learning modelsPrior experience in processing DICOM and non DICOM imagesMachine learning models for life sciences industryIn-depth knowledge and coding experience in Python (polyglot in multiple programming languages a plus). Hands-on skills in Data Science packages, for instance Pandas, Scikit-learn, and/or numpy, a must.Extensive experience with commonly used Deep Learning models (2d/3d CNN, LSTM/GRU, etc), modern DL architectures (Resnet, U-net, etc), and frameworks (Tf, pytorch, keras, etc). Hands-on on other ML algorithms (RF, GBM, etc) a plus.Familiarity with advances in AI research and related applications in medical imaging, and/or computer vision (eg video).Technical and organizational skills/experience to lead complex, end-to-end ML/DL/AI projects, including typical project stages such as: data engineering, computing/storage resource budgeting, model training, model selection, model evaluation, and communication with other stakeholders.Fluent in using scientific computing environment e.g. unix / linux shell in a HPC cluster on premise or in cloud, to accomplish common development tasks (eg. editing, testing, efficient debugging, etc.) Hands-on experience with productivity toolchains (eg JIRA, enterprise git.)Understand the practical aspect of the mathematical foundation of ML, in particular optimization (first order method eg gradient descent, second order method eg Newton-Raphson, why in DL first order is dominant). Understand the practical aspect of statistics (population vs sample, different sampling techniques, etc)PhD or MS in relevant quantitative field (CS, EE, Physics, Mathematics, Statistics, etc.), and/or adv. Life Sciences degree with significant computational experience>3yr post-graduate work-experience in fields such as engineering, research, or product development with responsibilities relevant to position.Publications in the areas of Deep-/Machine Learning, and/or Statistics a plus.Solid understanding of medical image data formats (eg DICOM)Excellent communication skillsAbility to multitask and prioritize while maintaining efficiency and quality of workInternally motivated with a commitment to accuracy and quality

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