Senior Biostatistician
University of ChicagoAbout the role
Department
BSD PHS - Biostatistics
About the Department
Job Summary
This at-will position is wholly or partially funded by extramural funds (e.g., grant, gift, endowment) which is renewed under provisions set by the grantor. Your employment will be contingent upon the continued receipt of these extramural funds and your satisfactory job performance. If this position is eliminated due to the discontinuation of extramural funding, you will be given a minimum of one pay period’s written notice (If exempt: 30 days, If non-exempt: 2 weeks), or pay in-lieu of notice.
Responsibilities
Provides statistical guidance in designing studies to answer scientific questions, including basic science experiments, animal studies, clinical trials and population-based studies.
Advises clinical investigators in collecting, managing and analyzing their data. Generates interim analyses and statistical reports as needed.
Assists investigators in the interpretation of the results.
Provides support for generation of abstracts and manuscripts for publication, including writing of Statistical Methods sections.
Performs a range of activities to facilitate the design of research project and the publication of their results. Uses knowledge of statistics to help develop objectives and statistical procedures for the project.
Writes statistical computer programs and reviews computer output for consistency and quality.
Performs other related work as needed.
Minimum Qualifications
Education:
Minimum requirements include a college or university degree in related field.
Work Experience:
Certifications:
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Preferred Qualifications
Education:
Master’s degree in Statistics, Biostatistics, Data Science, or related.
At least one course each in mathematical statistics (e.g., point estimation, confidence intervals, hypothesis testing, large sample theory, asymptotic efficiency, exponential families, decision theory, etc.), linear models, and longitudinal (or panel) data analysis. Course(s) in at least two of the following areas: generalized linear models, categorical data analysis, survey sampling, survival analysis, epidemiological methods, mixed, hierarchical or latent variable models, or multivariate analysis.
Courses in computer science, especially those focusing on programming essentials, data structures and/or databases, statistical computing and machine learning.
Experience:
At least
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