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Internship Geospatial Data Scientist Jobs (NOW HIRING)

GRVTY is hiring a Senior Data Scientist to support an IC program developing an enterprise-scale analytics and data management framework for geospatial intelligence products. The program is in active ...

GRVTY is hiring a Senior Data Scientist to support an IC program developing an enterprise-scale analytics and data management framework for geospatial intelligence products. The program is in active ...

Data Scientist Location: Hybrid/Alexandria, VA At GeoDelphi Inc., we harness the power of ... As pioneers in the geospatial industry, our Agentic AI Platform, Iris, accelerates speed-to-answer ...

Data Scientist Location: Hybrid/Alexandria, VA At GeoDelphi Inc., we harness the power of ... As pioneers in the geospatial industry, our Agentic AI Platform, Iris, accelerates speed-to-answer ...

Bachelor's degree in Geography, GIS, Computer Science, Data Science, Engineering, or a related technical discipline. * 12+ years of professional experience in geospatial technology, software ...

Data storage & management: design and maintain storage for large raster and vector datasets ... Qualifications The Geospatial Scientist selected should have the following: * Master's in ...

Mid-Level Data Scientist

Springfield, VA · On-site

$73K - $132K/yr

Leidos is actively interviewing for a Mid-Level Data Scientist to join our team in Springfield, VA ... Experience working with geospatial data in multiuser enterprise environment. * Minimum 2 years of ...

Geospatial Scientist

Boulder, CO · On-site +1

$80K - $110K/yr

Data storage & management: design and maintain storage for large raster and vector datasets ... Qualifications The Geospatial Scientist selected should have the following: * Master's in ...

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Internship Geospatial Data Scientist information

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How much do internship geospatial data scientist jobs pay per year?

As of Sep 14, 2026, the average yearly pay for internship geospatial data scientist in the United States is $122,738.00, according to ZipRecruiter salary data. Most workers in this role earn between $98,500.00 and $136,000.00 per year, depending on experience, location, and employer.

What is an internship geospatial data scientist?

An Internship Geospatial Data Scientist is a student or recent graduate who assists in analyzing and interpreting geographic data using advanced computational and statistical methods. They work with spatial datasets, use GIS (Geographic Information Systems) software, and may help develop models to solve real-world problems involving locations and spatial relationships. This internship provides hands-on experience in data analysis, mapping, and programming, preparing individuals for a career in geospatial science or data analytics.

What types of projects can an internship geospatial data scientist expect to work on, and how do these contribute to the organization's goals?

As an Internship Geospatial Data Scientist, you can expect to work on projects involving spatial data analysis, map creation, and data visualization using tools like GIS software and Python or R. These projects often support decision-making in areas such as urban planning, environmental monitoring, or logistics optimization. Interns typically assist in cleaning and processing large spatial datasets, developing models, and presenting findings to team members. Your contributions help inform strategic initiatives and provide actionable insights, offering valuable experience and exposure to real-world geospatial challenges.

What are the key skills and qualifications needed to thrive as an internship geospatial data scientist, and why are they important?

To thrive as an Internship Geospatial Data Scientist, you need a solid understanding of GIS concepts, spatial analysis, and proficiency in programming languages like Python or R, often supported by coursework or a background in geography, computer science, or related fields. Familiarity with tools such as ArcGIS, QGIS, remote sensing platforms, and data visualization software is typically expected. Strong analytical thinking, attention to detail, and effective communication skills help you interpret spatial data and collaborate with interdisciplinary teams. These abilities are crucial for delivering actionable geospatial insights and supporting data-driven decision-making within organizations.

What is the difference between Internship Geospatial Data Scientist vs Geospatial Data Analyst?

AspectInternship Geospatial Data ScientistGeospatial Data Analyst
Required CredentialsEnrolled in or recent graduate of relevant degree (e.g., GIS, Data Science)Similar educational background, often with additional certifications in GIS or analytics
Work EnvironmentInternship setting, often in tech, government, or environmental firmsFull-time or part-time roles in various industries like urban planning, environmental agencies
Employer & Industry UsageUsed by organizations seeking entry-level talent for geospatial projectsCommon in industries requiring spatial data analysis for decision-making

The Internship Geospatial Data Scientist is an entry-level role focused on learning and supporting geospatial data projects, often within a structured internship program. In contrast, a Geospatial Data Analyst is a more established position involving ongoing data analysis, reporting, and decision support. Both roles require similar educational backgrounds, but the internship is temporary and geared toward gaining experience, while the analyst role is typically permanent and more autonomous.

What cities are hiring for Internship Geospatial Data Scientist jobs?

Cities with the most Internship Geospatial Data Scientist job openings:

What are the most commonly searched types of Geospatial Data Scientist jobs?

The most popular types of Geospatial Data Scientist jobs are:

What states have the most Internship Geospatial Data Scientist jobs?

States with the most job openings for Internship Geospatial Data Scientist jobs include:

What are popular job titles related to Internship Geospatial Data Scientist jobs?

For Internship Geospatial Data Scientist jobs, the most frequently searched job titles are:

Data Scientist, Senior

Chantilly, VA • On-site

Other

Re-posted 17 days ago


Job description

GRVTY is hiring a Senior Data Scientist to support an IC program developing an enterprise-scale analytics and data management framework for geospatial intelligence products. The program is in active development - this is not a maintenance role. You will be contributing to a system being built from the ground up, with real influence over how the components are designed and implemented.

The core of the work is applying machine learning, statistical analysis, and data mining techniques to large-scale geospatial and imagery datasets in order to generate automated IV&V metrics and analytical insights. You will work closely with software developers, systems architects, and government stakeholders to design the analytical workflows, build the pipelines that execute them, and ensure the outputs are technically sound and mission-relevant. This role requires someone who is equally comfortable writing production-quality code and explaining analytical methodology to a non-technical government customer.

What You'll be Owning
  • Develop and apply machine learning, statistical, and data mining techniques to extract metrics and insights from large-scale geospatial and imagery datasets.
  • Design and implement automated analytical workflows that support IV&V evaluation of GEOINT data products across multiple source types and collection geometries.
  • Build and optimize data pipelines for ingesting, transforming, and processing multi-source geospatial data at scale.
  • Work with software engineers and the solutions architect to integrate analytical components into the broader system architecture - your models need to run in production, not just notebooks.
  • Evaluate analytical output quality, identify failure modes, and iterate on methodology to improve metric accuracy and reliability.
  • Collaborate directly with government stakeholders to understand mission requirements, validate that analytical outputs are operationally meaningful, and communicate findings clearly.
  • Document analytical methodologies, model assumptions, validation approaches, and limitations to a standard that supports program continuity and government review.
  • Contribute to trade studies and capability assessments as the program expands into new data types and evaluation scenarios across option years.
What You Must Have
  • Active Top Secret clearance with ability to obtain SCI and CI Polygraph.
  • Bachelor's degree in Data Science, Computer Science, Mathematics, Statistics, or a closely related quantitative field. Equivalent experience will be considered.
  • 9+ years of professional experience in data science, machine learning, or applied analytics, with a track record of delivering production-quality work on real programs.
  • Strong Python programming skills, including experience with scientific computing libraries such as NumPy, pandas, scikit-learn, and SciPy.
  • Experience building and deploying end-to-end analytical pipelines - not just exploratory analysis, but workflows that run reliably in operational or near-operational environments.
  • Experience working with large, complex, or multi-source datasets, including data quality assessment and remediation.
  • Ability to communicate analytical methods and results clearly to both technical teammates and non-technical government customers.
  • Comfortable working in a structured program environment with formal deliverables, government oversight, and documentation requirements.
What Would be Nice to Have
  • Experience with geospatial data, imagery products, or remote sensing datasets - familiarity with the data types matters here.
  • Prior work supporting NGA, NRO, or other IC programs, particularly in an analytical or data science capacity.
  • Experience with geospatial Python libraries such as GeoPandas, Shapely, Rasterio, or GDAL.
  • Familiarity with NGA data systems, GEOINT product formats, or IC data standards.
  • Experience deploying analytical workloads in classified or air-gapped IC environments.
  • Background in automated quality assessment, data validation, or IV&V methodologies.
  • Experience with graph-based or network analytics methods applied to complex, multi-source datasets.
  • Familiarity with ML/Ops practices - reproducible training pipelines, model versioning, experiment tracking.
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