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Rainmaker Fellow, Satellite Remote Sensing

Remote / Online - Candidates ideally in
El Segundo, Los Angeles County, California, 90245, USA
Listing for: Make Rain
Full Time, Remote/Work from Home position
Listed on 2026-08-02
Job specializations:
  • Research/Development
    Research Scientist, Data Scientist, AI Business & Operations
Salary/Wage Range or Industry Benchmark: 81244 - 97315 USD Yearly USD 81244.00 97315.00 YEAR
Job Description & How to Apply Below

About Rainmaker /p

Rainmaker is pioneering a modern cloud-seeding system to increase precipitation, improve water availability, and address severe-weather challenges. We combine atmospheric science, weather-resistant UAS, radar and satellite observations, numerical weather prediction, novel sensing systems, and sustainable seeding technologies to design, operate, and evaluate precipitation-enhancement programs.

pSatellite observations provide the coverage Rainmaker needs to understand clouds across large regions, while our radar, aircraft, UAS, and in-situ sensors provide unusually valuable observations for validation and improvement.


About the Fellowship pThe Rainmaker Satellite Remote Sensing Fellowship is a paid, full-time research appointment for exceptional undergraduate and graduate students, postdoctoral researchers, recent graduates, and other early-career researchers.

pYou will join Rainmaker's satellite remote-sensing group and work alongside our researchers on a scoped project drawn from the team's current research priorities and defined in close collaboration with your research lead or mentor.

Project matching will consider available data, mentor capacity, team needs, and your background. You will take responsibility for a concrete computational workstream while contributing to ongoing retrieval, validation, automation, and operational-support work across the team.

pFellowship projects change with Rainmaker's research and operational priorities. Examples of the work our satellite remote-sensing team may pursue include:

ul liBenchmarking and improving microwave-sounder retrievals using Rainmaker in-cloud measurements, radar, geostationary imagery, and model fields.
liFusing intermittent polar-orbiting observations with frequent geostationary imagery to track cloud properties between overpasses. liAutomating an existing manual satellite-analysis workflow used by Rainmaker scientists or operators. liValidating cloud-phase, cloud-top, precipitation, moisture, temperature, or related satellite products against Rainmaker observations. liDeveloping a bounded retrieval or satellite data product for research or operational use. liAcquire, process, collocate, and quality-control microwave, polar-orbiting, and geostationary satellite observations.
liReproduce an existing retrieval or operational baseline before testing improvements. liValidate satellite products against radar, NWP, soundings, surface observations, and Rainmaker aircraft, UAS, or in-situ measurements. liQuantify detection skill, bias, uncertainty, spatial representativeness, latency, coverage, and failure modes by meteorological regime. liImplement physically motivated, statistical, or ML retrieval improvements when justified by the project and data. liBuild documented, reproducible workflows that other Rainmaker scientists can run and extend.
liPresent findings to satellite scientists, radar scientists, meteorologists, operators, and technical leadership. liDeliver a final artifact such as a collocation dataset, retrieval benchmark, automated data product, error analysis, fusion prototype, or research paper. liCurrent undergraduate, master's, or PhD students; postdoctoral researchers; recent graduates; and other early-career researchers are all eligible. liStrong quantitative and programming ability, preferably in Python. liExperience with atmospheric remote sensing, satellite meteorology, physics, applied mathematics, electrical engineering, computer science, or a related field.
liInterest in microwave sounders, polar-orbiting observations, geostationary imagery, retrieval methods, or scientific data products. liAbility to implement a scientific method, establish a baseline, and validate the result carefully. liComfort working with large, imperfect, multidimensional observational datasets. liHigh agency and the ability to take responsibility for a bounded workstream while collaborating with experienced researchers. liClear written and verbal communication. liAvailability for full-time, on-site work in El Segundo for the agreed appointment.
/ul pBy the end of the fellowship, you will have answered a clearly defined scientific or operational question and delivered a trusted computational result the satellite remote-sensing team can continue using. Depending on the project, that might be a quality-controlled validation dataset, retrieval benchmark or improvement, error analysis, fusion prototype, automated data product, or operational workflow.

pSuccess does not require a positive result.

A rigorous conclusion about what the available observations can and cannot support can be as valuable as an improved retrieval.

ul liPaid, full-time, and on-site in El Segundo. liThree-to-six-month appointment, with four months as the standard duration. liRolling applications and project-specific start dates. liAttached directly to Rainmaker's satellite-science group with a named mentor. liConsideration for future full-time roles liPublication may be…
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