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Data Scientist
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- Posted 10 hours ago
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Job Description
Responsibilities :
Translate business needs into ML/AI problem statements and measurable success metrics. Develop ML models and, where relevant, GenAI components (e.g., retrieval-augmented generation, prompt pipelines) with clear evaluation criteria. Run evaluation: offline metrics, error analysis, bias checks, and monitoring baselines document decisions and assumptions. Communicate results and limitations clearly to technical and non-technical stakeholders support adoption in workflows.Additional Responsibilities:
Python (pandas, numpy) + Git for reproducible development Databricks (Notebooks, Workflows) for development and orchestration ML flow (experiments, tracking, model registry) for lifecycle management Azure (cloud services where relevant Azure OpenAI and Azure AI Foundry for GenAI build/evaluation) Databricks Mosaic AI (including Mosaic AI Model Serving) for GenAI delivery in the lakehouse Databricks Vector Search for RAG retrieval patterns Unity Catalog for governed data and model access (where applicable) Lakehouse Monitoring / model monitoring for quality and drift (where applicable)Technical and Professional Requirements:
Experience: 4-6+ years delivering end-to-end data science projects. Education: Master's or PhD in Data Science, Machine Learning, Statistics, Computer Science, Applied Mathematics, or related quantitative field (required from this level onward). Core stack: Python, Spark, Git ML frameworks Databricks/MLflow (or equivalent) cloud basics.More Info
Key Skills
Data Science - Basic
AI-Data science
AI-Generative AI
Generative AI - Basic
Azure Analytics Services



