Senior Data Scientist (Geospatial)
Company: Gigascaling
Location: San Francisco
Posted on: February 14, 2025
Job Description:
We are seeking a cross-functional Senior Data Scientist
(Geospatial) to lead the development and deployment of scalable
geospatial solutions that drive critical business decisions. In
this role, you will harness the power of spatial statistics, GIS,
and machine learning to optimize field operations, enhance data
accessibility, and support large-scale decision-making. This is an
individual contributor (IC) role with high autonomy and the
opportunity to simultaneously shape the company's geospatial data
stack and capabilities and contribute to foundational modeling
strategies.Location: San Francisco, CA or S--o Paulo,
BrazilLanguages: English required, Portuguese a plusRole
Responsibilities:
- Develop and productionize scalable spatial statistical
measurement designs for our field teams to execute in our MRV
(Measure, Report, and Verify) platform.
- Design and implement robust geospatial models for prediction of
soil, plant, and water measures, imputation of missing data, and
prediction of environmental outcomes.
- Architect and manage spatial data storage solutions for
performant storage and recovery of national-scale datasets.
- Work at the cutting edge of research in ERW spatial sampling
techniques to develop statistically rigorous decision-making and
credit-generating frameworks.
- Collaborate with engineering teams on core geospatial
infrastructure, model deployment, and decision-support
products.Background and Requirements:
- 3+ years of industry experience in geospatial data science,
spatial statistics, or applied machine learning with a strong
emphasis on geospatial applications.
- Deep expertise in managing geographic data in an RDBMS
(PostGIS, etc), Python (GeoPandas, shapely, etc), and file storage
(GeoArrow, GeoParquet, etc).
- Hands-on experience with spatial datasets, geospatial modeling,
and large-scale data processing.
- Strong knowledge of spatial statistics, sampling methodologies,
and experimental design.
- PhD in a quantitative field (Statistics, Machine Learning, or
related) preferred, or equivalent industry experience.Nice to
Haves:
- Experience in agriculture, environmental science, climate tech,
or remote sensing.
- Familiarity with environmental data, remote sensing, and public
gridded environmental data.
- Familiarity with API integrations and data retrieval.
- Familiarity with methods for statistical monitoring of natural
resources.Personal Attributes:
- Strategic thinker who can balance short-term needs with
long-term vision.
- Highly collaborative, with strong leadership skills and a
hands-on approach to problem-solving.
- Ability to navigate ambiguity and prioritize effectively in a
fast-paced environment.
- A positive, action-oriented mindset with a focus on
outcomes.What does success look like in this role?Meaningful
contributions to the advancement of our internal technical stack
and methodology development, and providing support to the SciOps
team to execute on our ambitions.About Terradot:Our mission is to
stabilize Earth's climate by transforming nature's most powerful
permanent carbon removal process into a global climate solution. By
advancing science, building technology, and assembling a global
coalition, we are catalyzing a global initiative to scale Enhanced
Rock Weathering within the next decade, starting in Brazil.Founded
out of the Stanford University ecosystem, Terradot is led by the
world's leading experts to advance the science and technology of
ERW. Our unique structure bridges industry, academia, and
government and allows our team to contribute with speed & scale. We
have raised $58.2M in total funding from John Doerr, Sheryl
Sandberg & Tom Bernthal, George Roberts, Microsoft's Climate
Innovation Fund, Google, Cisco and Venture Funds, Floodgate,
Kleiner Perkins, Acre Venture Partners, Gigascale Capital, Valor
Capital, Ponderosa Ventures and others. We have sold -300,000 tons
in offtakes from leading CDR buyers like Frontier and Google.All
qualified applicants will receive consideration for employment
without regard to race, color, religion, sex, national origin,
disability, protected veteran status, or any other characteristic
protected by law. Research suggests that qualified people from
historically marginalized groups may self-select out of
opportunities if they don't meet 100% of the job requirements. We
encourage individuals who believe they have the skills necessary to
thrive to apply for this role.
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Keywords: Gigascaling, San Francisco , Senior Data Scientist (Geospatial), Other , San Francisco, California
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