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Peregrine Advisors is seeking a data scientist to turn difficult questions into evidence. You will work with stakeholders to define what should be measured, assess data quality, and select appropriate statistical or ML methods.
You will explain what results imply and do not establish, and ensure analyses are reproducible. From exploratory analyses through model development, validation, and deployment, you will communicate uncertainty clearly to both technical and nontechnical audiences and help
Data Scientists turn difficult questions and complex data into evidence. They work with stakeholders to define what should be measured, determine whether the available data can support the question, select appropriate statistical or machine learning methods, and explain what the results do and do not establish.
The work runs from exploratory analysis through model development, validation, interpretation, and communication. Data Scientists examine data quality and bias, test assumptions, quantify uncertainty, compare alternatives, document methods, and make analyses reproducible. When a model will be used repeatedly, they help define how its performance should be assessed over time.
You are rigorous about methods and candid about uncertainty. You would rather narrow a claim than overstate the evidence, and you are willing to report a null or inconvenient result when that is what the analysis supports.
You are curious about the domain, not only the dataset. You work with subject-matter experts, analysts, engineers, and decision-makers to frame the right question, challenge assumptions, and turn technical results into conclusions people can use responsibly.
An opening may emphasize statistical inference, experimental design, forecasting, natural language processing, computer vision, econometrics, operations research, causal analysis, geospatial analysis, model risk, program evaluation, or applied AI. Production deployment may be shared with Machine Learning Engineers or AI Engineers.
Specific openings may name programming languages, statistical packages, ML libraries, cloud analytical environments, distributed-computing tools, domain datasets, visualization platforms, or documentation and review standards. OPEN Data Jobs will state the required methodological and domain depth with each opening.
Compensation, benefits, work location, and employment terms are set for each specific opening and will be stated with that opening.