Quick Overview
Job Description
Manager's note:
Key candidate profile: Prioritize candidates from precision agriculture, digital ag, seed companies, agricultural equipment manufacturers, ag retailers, or crop input companies.
Deprioritize: Candidates whose background is primarily academic GIS, remote sensing, crop modeling, research, or general geospatial analytics without hands-on agricultural industry experience.
Critical screening test: The candidate should understand production agriculture and precision-ag data, including how planter performance, seeding rates, sprayer application data, and yield-monitor data relate to one another within a corn-field dataset.
Details:
- Person can sit at either Cary or Johnston, but will consider fully remote.
- If remote, would need to be available roughly 8-5 Central time.
- Would also need to be able to travel to Des Moines 1 or 2 times per year.
- We are specifically seeking someone who has worked with agricultural datasets.
- Geospatial Analytics background in the context of agriculture is important.
- We don't want candidates who are heavy in Geospatial Analytics, but without agricultural background.
- We are also not seeking a pure agronomist, without the analytics background.
- This is a good mixture of agronomy and geospatial analytics.
- We need someone with excellent verbal and written communication skills.
- This person will not just be doing the analytics, but needs to be able to communicate it through PowerPoint slides or PDF summary.
- Needs to be able to put the material together in an easy to understand and professional way.
- They won't be presenting the material themselves, but will need to assemble it together.
- We are seeking a technically skilled individual to support data analytics and reporting for marketing initiatives focused on agronomic value of technologies.
- This individual will work with large agricultural datasets from connected equipment, field trials, remote sensing platforms, and environmental data sources to generate actionable insights for internal stakeholders, dealers, and customers.
- The successful candidate will be responsible for managing analytical projects from start to finish, including data processing, statistical analysis, visualization, interpretation, and communication of results.
- Projects will involve operational datasets (from planters, sprayers, combines, etc.), geospatial datasets such as soil maps and satellite imagery, and agronomic datasets including weather, soil, and scouting data.
- This position requires someone who can quickly understand project objectives, develop an analytical approach, execute the work, and deliver well-supported recommendations and conclusions.
Technologies Used:
- Required: ArcGIS Pro, QGIS, R, Databricks
- Nice to Have: Operation Center, Python, Tableau; PowerBI
Education:
- A Master's degree candidate is likely what you will want to target.
- A PhD could be qualified, but be wary of candidates without any practical experience.
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