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sarvam Verified 2d ago

Embedded Data Scientist, Chanakya

Delhi, Delhi, India On-site

Salary not listed
PaySalary not listed
TypeFull-time
Work settingOn-site
Verified listing

JobFig found this opening at its original source and checks that it remains available.

About the role

Embedded Data Scientists transform complex client data into structures that AI systems can reliably reason over. You are deployed alongside Strategic Deployment Engineers at client sites, working directly with client data environments to understand, structure, and operationalise large-scale datasets. This means working with heterogeneous, multimodal data — including documents, images, audio, geospatial data, and structured records — and designing the semantic structures that allow AI systems to interpret and reason over that data. You will define how data is represented inside the AI system: how documents are segmented, how metadata is defined, how entities and relationships are represented, and how different data modalities connect. You will design ontologies, tagging systems, and knowledge graph structures that allow the reasoning engine to operate effectively. You will often work with classified or operationally sensitive datasets in environments where standard tooling may not exist. You will own the quality of the data layer in your assigned accounts, ensuring the system is built on a foundation that enables reliable reasoning at scale.

What you'll bring

  • 2–5 years in data science, applied machine learning, or large-scale data analysis roles
  • Strong Python skills including pandas, NumPy, and modern NLP or LLM tooling
  • Solid grounding in ML fundamentals — enough to understand model behaviour, contribute to evaluation design, and collaborate with a models team on training and benchmarking
  • Experience working with large unstructured datasets including documents, transcripts, reports, or operational records
  • Familiarity with LLM-based systems, retrieval pipelines, or vector search systems
  • Experience designing or working with data schemas, metadata frameworks, entity models, or semantic data structures
  • You are comfortable operating with autonomy in client environments
  • you don't need a data team around you to do rigorous work
  • You move fluently between domain understanding, data modelling, and AI system design
  • You move between the technical and the operational: you understand what the data means in the context of what operators actually do with it
  • Familiarity with knowledge graphs, ontologies, or semantic data modelling
  • Experience with multimodal datasets (text, imagery, audio, geospatial, or structured data)