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The CHeT Research Data Engineer II will work with faculty, study teams, and industry partners in driving data science for key projects, which include data predictive model analytics for disease progression and observational and interventional studies involving smart apps, wearable sensors, and other new technologies. Under general guidance and supervision, the position has considerable latitude for independent judgment and initiative.
Job Responsibility:
Data science for Omics and Clinical Disease Progression Analytics
Curate, harmonize, and integrate large-scale omics and clinical datasets to support disease progression research
Develop and apply computational methods, algorithms, and predictive models to characterize and forecast disease trajectories
Build custom data models and multi-omic integration pipelines to uncover biological mechanisms and clinical correlates of disease
Design and implement processes, tools, and dashboards to monitor model performance, assess accuracy, and support reproducible research
Data science in studies involving smart apps, wearable sensors, and new technologies
Use statistics, machine learning, and computer science to analyze and interpret digital data and to compare to traditional assessments and scales
Develop custom data models and algorithms to apply to data sets
Use predictive modeling to analyze and characterize disease progression
Assess the effectiveness and accuracy of new data sources and data gathering techniques
Develop processes and tools to monitor and analyze model performance and data accuracy
Research & writing & publications related to data science modeling/analytics
Disseminate research results through abstracts, publications, and other mechanisms
Keep abreast of trends as they relate to the computer field by self-study, attending job-related seminars, courses, or conferences which enhance personal development
Other duties as assigned
Requirements:
Bachelor’s degree in Data Science, Computer Science, Mathematics, Statistics, or similar discipline Required
2 years of relevant experience Required
or equivalent combination of education and experience Required
Software Analytics, Machine and Deep Learning (e.g., (clustering, decision tree learning, artificial neural networks, etc.), Visual analytics, Natural Language Processing, Multimodal Data Fusion, Compressive Sensing, Data architectures
Knowledge of advanced statistical techniques and concepts (e.g., regression, properties of distributions, statistical tests and proper usage, etc.) and experience with applications
Research & Project Management
Coding knowledge and experience in computer languages (e.g., C, C++, Java, R, Python, SQL)
Excellent communication skills for coordinating across teams
A drive to learn and master new technologies and techniques