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Morningstar

Data Scientist

Job · Full-timeIn OfficeMumbaiEntry level / 0-2 years1 opening

About this role

Morningstar is hiring for Data Scientist in Mumbai. This opening was published by Morningstar on their official workday careers board on 17 August 2026 and was verified as still open on 3 September 2026. About the role As a Data Scientist on the AI & ML (Data Collection) team, you will own…

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Skills you'll use

PythonSQLMachine LearningNLPPandasNumPyCommunicationData AnalysisStatisticsTestingScikit-learnTensorFlow

What you'll do

  • End-to-End Data Science Ownership: Own extraction and enrichment problems from discovery through production and continuous improvement. Define the problem, select data and methods, establish success criteria, evaluate results, and monitor outcomes
  • Problem Formulation & Data Strategy: Translate business requirements into measurable data science problems. Explore structured and unstructured data, identify quality and source-variability issues, and define training, validation, test, and labeling requirements with domain partners
  • Model Development & Experimentation: Design and optimize NLP, machine learning, and LLM solutions for document understanding and information extraction
  • Extraction Solution Development: Build extraction workflows using document parsing, preprocessing, chunking, feature engineering, embeddings, RAG, prompt engineering, fine-tuning, and agentic approaches
  • Evaluation & Error Analysis: Create representative evaluation datasets and metrics such as precision, recall, F1, field-level accuracy, coverage, confidence, and business impact. Use error analysis to guide model, prompt, data, and workflow improvements
  • Productionization & Model Ownership: Develop robust, testable model components and partner with ML Engineers to integrate solutions into production. Monitor quality, investigate regressions or drift, and prioritize improvements based on customer and business impact
  • Technical Trade-offs & Quality: Evaluate accuracy, coverage, latency, scalability, robustness, and cost. Recommend approaches using empirical evidence, write maintainable code, and document datasets, assumptions, experiments, limitations, and results
  • Collaboration & Innovation: Partner with Product, Data Collection, Engineering, Platform, and domain teams. Evaluate advances in NLP, generative AI, LLMs, and information extraction, and apply methods that deliver measurable value

Who can apply

  • Bachelor's or Master's degree in Data Science, Computer Science, Statistics, Mathematics, Economics, Engineering, or a related quantitative field
  • 2+ years of experience in applied data science, machine learning, NLP, or information extraction
  • Demonstrated experience taking a data science or machine learning solution from problem definition and experimentation through production launch and ongoing improvement
  • Experience analyzing large, complex structured and unstructured datasets, including exploration, preprocessing, feature engineering, sampling, labeling, and dataset construction
  • Hands-on experience developing document intelligence or information-extraction solutions using techniques such as transformers, embeddings, RAG, LLMs, prompt engineering, fine-tuning, or agentic workflows
  • Strong understanding of experimental design, statistical reasoning, model evaluation, error analysis, and metrics such as precision, recall, F1, field-level accuracy, confidence, and coverage
  • Proficiency in Python and SQL, with experience using pandas, NumPy, scikit-learn, and PyTorch or TensorFlow
  • Experience with Hugging Face, LangChain, or comparable NLP and LLM frameworks; ability to write maintainable, testable model and data-processing code
  • Familiarity with cloud ML environments, version control, automated testing, model monitoring, containers, or data orchestration tools is beneficial
  • Strong communication and collaboration skills, including the ability to explain model behavior, limitations, trade-offs, and recommendations; experience with financial data, document intelligence, or large-scale data collection is a plus

About Morningstar

About Morningstar Morningstar is an investment research company offering mutual fund, ETF, and stock analysis, ratings, and data, and portfolio tools. Discover actionable insights today. • The 3 Biggest Surprises of 2026 Russel Kinnel What’s a Safe Withdrawal Rate After You’ve Already…
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