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Geoai Jobs (NOW HIRING)

The ideal candidate possesses strong expertise in GIS development, cloud technologies, and modern GeoAI capabilities, leveraging geospatial analytics, and AI-driven insights to solve complex business ...

Engineering Manager

Brooklyn, NY ยท Hybrid

$159K - $186K/yr

Championing the adoption of AI capabilities across the team, including AI-assisted development tools, machine learning for data quality and anomaly detection, and GeoAI applied to gas network data.

The ideal candidate possesses strong expertise in GIS development, cloud technologies, and modern GeoAI capabilities, leveraging geospatial analytics, and AI-driven insights to solve complex business ...

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Geoai information

What is GeoAI?

GeoAI, or Geographic Artificial Intelligence, refers to the integration of artificial intelligence (AI) techniques with geographic information systems (GIS) and spatial data. GeoAI leverages machine learning, deep learning, and other AI methods to analyze and interpret geospatial data, such as satellite imagery, maps, and sensor data. This technology is used in a variety of fields including urban planning, environmental monitoring, disaster response, and transportation. By automating the analysis of large and complex spatial datasets, GeoAI helps organizations make more informed decisions and discover patterns that would be difficult to detect manually.

What are the key skills and qualifications needed to thrive as a GeoAI Specialist, and why are they important?

To thrive as a GeoAI Specialist, you typically need a background in geospatial science, data analysis, and machine learning, often supported by a degree in GIS, computer science, or a related field. Familiarity with tools such as Python, ArcGIS, QGIS, and machine learning libraries like TensorFlow or PyTorch is essential, along with experience using spatial databases. Strong problem-solving skills, adaptability, and effective communication set standout professionals apart in this field. These abilities are crucial for leveraging AI to extract actionable insights from geospatial data, enabling data-driven decision-making and innovation.

How do GeoAI professionals typically collaborate with domain experts like urban planners or environmental scientists?

GeoAI professionals regularly work alongside domain experts such as urban planners, environmental scientists, and policy analysts to ensure that spatial data analyses and AI-driven insights are relevant and actionable. Collaboration often involves joint project meetings, data sharing, and iterative feedback loops to refine models and interpret results in the context of real-world applications. This interdisciplinary teamwork helps translate complex geospatial data into practical solutions for urban development, resource management, and disaster response. Effective communication and a willingness to learn from other fields are key to success in these collaborative environments.
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Infographic showing various Geoai job openings in the United States as of July 2026, with employment types broken down into 67% Full Time, 8% Part Time, and 25% Contract. Highlights an 67% In-person, and 33% Remote job distribution.
Postdoctoral Research Associate in Geospatial AI (GeoAI) and Forest Health

Postdoctoral Research Associate in Geospatial AI (GeoAI) and Forest Health

Lincoln University

Jefferson City, MO โ€ข On-site, Remote

Full-time

Re-posted 23 days ago


Job description

PURPOSE:

The Postdoctoral Research Associate will engage in research and development of a GeoAI-powered early warning system for forest health by integrating multi-source geospatial data, including satellite imagery, UAV-based LiDAR and multispectral data, and environmental datasets.

This position supports a USDA-NIFA funded project focused on detecting early indicators of forest stress, pest infestation, and environmental disturbances using advanced artificial intelligence and geospatial analytics. The role contributes to research, education, and extension activities in Missouri and supports the broader mission of advancing innovation in geospatial science and environmental monitoring.

ESSENTIAL JOB FUNCTIONS, DUTIES, & RESPONSIBILITIES:

  • Plan and implement research activities focused on early detection of forest stress, disturbance, and ecological change using geospatial analytics and artificial intelligence.ย 
  • Compile, collect, clean, and process geospatial and ancillary datasets from multiple sources, including satellite imagery, UAV-based LiDAR, multispectral imagery, and environmental data.ย 
  • Develop, train, and optimize GeoAI models using machine learning and deep learning techniques for spatial analysis and predictive modeling.
  • Validate GeoAI models through field verification and collaboration with the Missouri Ozark Forest Ecosystem Project (MOFEP).ย 
  • Develop decision-support tools and interfaces that translate complex geospatial outputs into usable information for stakeholders.ย 
  • Contribute to peer-reviewed publications, conference presentations, and technical documentation required for project deliverables.ย 
  • Mentor graduate and undergraduate students involved in research activities.ย 
  • Collaborate with interdisciplinary teams across research, extension, and education initiatives.ย 
  • Maintain accurate records of research activities, methodologies, and results.ย 
  • Perform other duties as assigned by the supervisor in support of project goals.

KNOWLEDGE, SKILLS, & ABILITIES:

  • Strong understanding of Geospatial Artificial Intelligence (GeoAI), including integration of machine learning and deep learning methods with geospatial and environmental datasets.ย 
  • Proficiency in programming languages such as Python or R, including experience with relevant libraries for data analysis, modeling, and visualization.ย 
  • Knowledge of spatial data processing, geostatistics, and remote sensing techniques.ย 
  • Familiarity with multi-source data integration and spatial modeling workflows.ย 
  • Experience working with geospatial software and tools such as GIS platforms, remote sensing tools, and data processing frameworks.ย 
  • Ability to interpret scientific data and translate findings into actionable insights.ย 
  • Strong analytical, problem-solving, and critical thinking skills.ย 
  • Effective written and verbal communication skills for technical and academic audiences.ย 
  • Ability to work both independently and collaboratively within interdisciplinary research teams.ย 
  • Strong organizational skills and ability to manage multiple tasks and deadlines.

QUALIFICATIONS:

  • Ph.D. in Geospatial Science, Geography, Remote Sensing, Data Science, Forestry, Environmental Science, or a closely related field.
  • Valid driver's license.ย 
  • Must have or be able to obtain a Remote Pilot Certificate (FAA Part 107).ย 
  • Demonstrated experience conducting independent research.
  • Ability to manage research timelines and deliverables within a grant-funded project.

PREFERRED QUALIFICATIONS:

  • Experience working with UAV or LiDAR data for environmental or forestry applications.ย 
  • Background in applying machine learning methods to geospatial or ecological datasets.ย 
  • Demonstrated record of peer-reviewed publications or scientific research dissemination.
  • Ability to work independently and manage projects with minimal supervision.
  • Strong organizational and problem-solving skills, particularly when working with large or complex datasets.
  • Experience collaborating across interdisciplinary teams.

PHYSICAL DEMANDS:

  • Work will be conducted in both office and outdoor field environments.
  • Fieldwork may involve walking in forested terrain and working in variable weather conditions.
  • Ability to lift and transport equipment weighing up to 40 pounds.
  • Ability to travel to research sites as needed.

This job description is not intended to be a complete list of all responsibilities, duties or skills required for the job and is subject to review and change at any time, with or without notice, in accordance with the needs of Lincoln University. Since no job description can detail all the duties and responsibilities that may be required from time to time in the performance of a job, duties and responsibilities that may be inherent in a job, reasonably required for its performance, or required due to the changing nature of the job shall also be considered part of the jobholder's responsibility.