Research Associate-Fixed Term

Michigan State UniversityEast Lansing, MI
27d

About The Position

The Plant Resilience Institute (PRI) at Michigan State University is seeking a highly motivated and interdisciplinary postdoctoral researcher with strong computational and data science skills to join a project focused on identifying causal environmental drivers of crop resilience and yield. The project integrates field-based environmental monitoring, quantitative trait data, and controlled environmental simulations to uncover key environmental variables influencing plant performance across diverse agricultural conditions. This position will focus on the computational aspects of the project, including data integration, association analyses (EWAS), and development of predictive models using large, multi-dimensional datasets. The postdoc will work closely with PRI researchers and external partners to translate complex environmental and phenotypic data into actionable insights for crop improvement and climate adaptation strategies. This is an exciting opportunity to contribute to a pioneering approach in plant science that connects quantitative genetics, environmental sensing, and agricultural data science at scale.

Requirements

  • Ph.D. in plant biology, quantitative genetics, computational biology, statistics, bioinformatics, data science, agricultural engineering, environmental modeling, or a related field with a strong computational and/or quantitative component by the time of appointment
  • Strong data analysis skills using R, Python, or equivalent tools for large-scale datasets
  • Familiarity with large, multidimensional datasets (e.g., environmental, phenotypic, or genetic)
  • Strong communication, organizational, and team collaboration skills

Nice To Haves

  • Experience working with large scale multi-environment trials
  • Familiarity with environmental sensors, remote sensing, or IoT-based data collection
  • Knowledge of association mapping (GWAS/EWAS), statistical modeling, or machine learning in biological contexts
  • Interest in field-lab integration and scaling projects from pilot to multi-site implementation
  • Experience working with maize or other major crop species

Responsibilities

  • Integrate and analyze large-scale environmental and biological datasets collected from multi-site field trials and controlled-environment experiments
  • Perform association analyses (e.g., EWAS) to identify environmental variables significantly correlated with plant traits such as yield and stress resilience
  • Collaborate with sensor teams, plant scientists, and data engineers to develop robust, reproducible data workflows
  • Contribute to the development of computational tools and pipelines for spatial, temporal, and multi-omic data
  • Support the synthesis of pilot findings and contribute to future research directions and proposals

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What This Job Offers

Job Type

Full-time

Industry

Educational Services

Education Level

Ph.D. or professional degree

Number of Employees

5,001-10,000 employees

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