Lead Data Scientist
Bengaluru, India · Full-time
- Posted 3w ago
- From SatSure’s careers page
- Location
- Bengaluru, India
- Type
- Full-time
- Level
- Senior
- Experience
- 6+ years
- Department
- Data and Analytics
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Opens the listing on satsure.keka.com
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About the role
Roles & Responsibilities
As a Lead Data Scientist, you will:
- Own technical charters and roadmap for multiple ML/CV initiatives.
- Lead and mentor applied scientists, mapping complex EO problems into actionable, scalable decision systems.
- Drive hypothesis generation, experimentation, architecture design, model development, and deployment for production ML pipelines.
- Own E2E delivery of large-scale ML/CV systems - from problem framing to data design, model development, deployment, and monitoring.
- Collaborate with Product, MLOps, Platform, and Geospatial experts to convert ambiguous requirements into elegant solutions.
- Communicate technical findings to leadership, customers, and cross-functional partners with clarity and precision.
- Assist in effective project, resource management, and timely deliverables (in an agile manner), via showcasing strong sense of ownership and accountability.
- Build reliable, efficient models that scale across geographies, seasons, sensors, and business domains.
- Write clean, scalable production-grade code in Python/PyTorch.
- Conduct A/B experiments and calibrate ML metrics to business KPIs.
- Innovate on model architectures (Transformers, diffusion, generative, time-series models, self-supervision, multimodal fusion and temporal modeling) to advance in-house geospatial ML SOTA.
- Represent your work through patents, technical documents, internal whitepapers, and publications (as applicable).
- Contribute to hiring and technical excellence, including mentoring junior team members and interns.
Required Qualifications
Education
- PhD/M.Tech/MS (Research) in CS, EE, EC, Remote Sensing, or related fields preferably from leading academic/industrial labs/institutes/corporates.
- Exceptional undergraduates with strong research/industry experience will also be considered.
Experience
- 6+ years of applied ML/Computer Vision experience (industry preferred).
- 2+ years in a technical leadership role - people and project leadership.
- Proven experience taking ML models from POC → production → monitoring.
Must-have Technical Expertise
To be eligible for this role, we are looking for candidates with the following qualifications:
- A proven track record of relevant experience in computer vision, NLP, learning theory, optimization, ML+Systems, foundational models, etc.
- Technically familiar with some, or most of (as evidenced by problem solving skills in novel scenarios): Transformers, UNet, RNNs/LSTMs/GRUs, YOLO/RCNN/Encoder–Decoder architectures, Generative models (GAN, VAE, Diffusion), Self-supervised & contrastive learning, Representation learning, domain adaptation & generalization, Semi-/Active learning, noisy-label learning, Super-resolution, anomaly detection, clustering, Model compression: distillation, pruning, quantization.
- PyTorch, Python, SQL, distributed systems (Spark), MLOps for large-scale training, data pipelines, and deployment.
Good to have
- SAR (VV/VH), NDVI, FCC, multispectral optical data, Temporal modeling (SITS, forecasting, seasonal dynamics), Cross-modal fusion (SAR+Optical, EO+tabular/ground)
- First-authored publications in ICLR, NeurIPS, CVPR, ICCV, ECCV, ICML, AAAI, IGARSS, IEEE TGRS, etc.
- Experience with geospatial datasets, climate models, foundation models, or EO analytics.
Benefits:
- Medical Health Cover for you and your family including unlimited online doctor consultations
- Access to mental health experts for you and your family
- Dedicated allowances for learning and skill development
- Comprehensive leave policy with casual leaves, paid leaves, marriage leaves, bereavement leaves
Interview Process:
- Intro call
- Assessment
- Presentation
- Interview rounds (ideally up to 3-4 rounds)
- Culture Round / HR round
Skills they ask for
Pick one to see other roles that ask for it.
- Ml cv
- Transformers
- Net
- Rn ns lst ms gr us
- Yolo rcnn encoder decoder architectures
- Generative models gan vae diffusion
- Self supervised
- Representation learning
- Domain adaptation generalization
- Active learning
- Noisy label learning
- Super resolution
- Anomaly detection
- Mq clustering
- Model compression distillation pruning quantization
About SatSure
Decision intelligence powered by Earth observationSatSure uses satellite and aerial data with AI to provide decision intelligence for sectors including agriculture, banking, infrastructure, and sustainability.
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