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Junior Research Assistant
University of ChicagoHyde Park Campus, United States, United Statesfull_timeVerifiedPosted 8 Oct 2025
💰 $58,500/yr($50,000/yr – $58,500/yr)
About the role
Department
PSD Statistics: Administration
About the Department
Professor Claire Donnat’s research group develops statistical and machine-learning tools for high-dimensional and spatial data, with a particular emphasis on applications in plant microbiology and microbial ecology. The group partners closely with wet-lab collaborators, providing a vibrant, interdisciplinary environment for quantitative scientists who want to see their work have direct biological impact.
Job Summary
Responsibilities
- Clean, annotate, and batch-correct high-throughput sequencing and phenotyping data.
- Design and execute pipelines for mutant detection and pathway analysis (e.g., PCA, sparse CCA, eCCA).
- Perform rigorous QC and visualization to validate findings.
- Develop and maintain R and Python packages that implement lab methods; write unit tests and documentation.
- Automate data workflows using Git, CI, and reproducible-research best practices.
- Summarize results in figures, slide decks, and draft sections of manuscripts.
- Present progress at weekly group meetings and collaborate with graduate students and postdocs.
- Provide technical support for ongoing projects (hardware, software, data transfer).
- Maintains technical and administrative support for a research project
- Analyzes and maintains data and/or specimens. Conducts literature reviews. Assists with preparation of reports, manuscripts and other documents.
- Perform other related duties as assigned.
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, Computer Science, Bioinformatics, Computational Biology, or a closely related field by start date.
Experience:
- Coursework or project experience in multivariate statistics and/or machine learning.
- Proficient in R and Python for data analysis.
- Experience with biological or ecological data (e.g., RNA-seq, microbiome, metabolomics).
- Prior contribution to an open-source project or package.
- Familiarity with high-performance or cloud computing (Slurm, AWS, GCP).
Technical Skills:
- Background in high-dimensional or spatial statistics.
- Familiarity with tidyverse, Bioconductor, scikit-learn, and pandas.
- Comfort with Git and Linux command line.
- Strong quantitative reasoning and problem-solving ability.
- Excellent written and oral communication skills.
- Ability to manage multiple tasks and meet deadlines in a collaborative setting.
Application Documents
- Resume/CV (required)
- Cover Letter describing interest and relevant experience (required)
- Contact information for three references (preferred)
- Link to GitHub or portfolio illustra
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