Treefera
Climate Tech
MachineLearningScientist–RemoteSensing
Neural analysis suggests this role is
optimal for Mid+ candidates.
“Machine Learning Scientist – Remote Sensing at Treefera. Skills: Machine Learning, Remote Sensing, Data Science. Develop and implement machine learning models. Process and analyze remote sensing data”
Industry & Context.
Data analysis; Troubleshooting
What They're Looking For.
Must Have
5+ years experience, Bachelor's degree
Nice to Have
PhD preferred, Experience with scikit-learn, TensorFlow, or PyTorch preferred, Experience with cloud platforms (AWS, GCP, Azure) preferred, Experience with remote sensing data preferred
What You'll Do.
Develop and implement machine learning models
Process and analyze remote sensing data
Collaborate with research scientists
Communicate findings to stakeholders
Stay updated on ML advancements
How You'll Work.
Team & Collaboration
Research scientists; Cross-functional teams
Communication Scope
Present findings
Full Job Description
GROW WITH TREEFERA We are a first-mile intelligence platform, delivering granular visibility into the point of origin in global ag & soft commodity supply chains - where risk, cost, performance and exposure are set. [https://app.ashbyhq.com/api/images/user-content/c732ad7a-0ae4-498f-b42a-bf284905cf4d/eaa3e7e4-29ff-4c00-86a8-f04fab8ec14a/Screenshot%202026-04-29%20at%2015.07.01.png] You’ll join a global, cross-functional team that values rigour, curiosity and working close to real-world challenges. Whether your focus is AI, climate, product or operations, you’ll have space to contribute meaningfully and make an impact from day one. If you’re excited by complex problems and want to help reshape how nature is valued in real-world decision-making, we’d love to hear from you. ROLE PURPOSE & RESPONSIBILITIES We are hiring a Machine Learning Scientist into the Science Team to contribute to the development of models — from classical statistics and gradient-boosted methods through to deep learning when warranted — that turn satellite, radar, and LiDAR observations into defensible, plot-level intelligence on the world's commodity supply chains. You will work across the full lifecycle — from research and prototyping through to validated, productionised models. A meaningful fraction of the team's work centres on building lightweight downstream models — classifiers, regressors, similarity-search workflows. Likely focus areas for this role include: - Commodity and plantation mapping by region - palm oil, cocoa, coffee, rubber, soy, timber and similar - in support of EUDR compliance and supply-chain due diligence. - Forest degradation and biomass / canopy-height estimation from multi-sensor fusion. - Develop ARR feasibility models that fuse climate, soil, and remote-sensing inputs to estimate site potential, forecast biomass and carbon trajectories, and quantify physical and permanence risk. RESPONSIBILITIES: - Design, train and evaluate ML models - from gradient-boosted methods to
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