Why This Role Stands Out
This hybrid role offers a fantastic opportunity to innovate with cutting-edge GenAI and LLM technologies, directly impacting internal operations and driving measurable ROI. You'll thrive here if you're an experienced AI professional eager to architect and deploy sophisticated solutions within a collaborative enterprise environment. Apply now to shape the future of internal AI infrastructure!
Quick Overview
Job Description
Professional Summary
Senior Data Scientist with over 12 years of experience specializing in production-grade GenAI and Machine Learning systems within complex enterprise environments. Expert at architecting LLM-powered assistants and predictive models that streamline internal operations, reduce technical debt, and drive measurable ROI. Proven capability in deploying high-performance AI solutions on Kubernetes and distributed cloud architectures to automate internal workflows and diagnostic processes.
Core Responsibilities:
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Internal Product Innovation: Transform large-scale internal data (logs, tickets, telemetry) into production-ready GenAI solutions to support the client mission and enhance employee productivity.
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Infrastructure-Aware AI: Design and champion AI models that balance immediate internal feature requests against the long-term technical health of clients production environments.
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Strategic AI Consulting: Partner with client stakeholders to identify high-impact AI opportunities, demonstrating how data science can optimize internal department OKRs.
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Advanced Analytics: Deliver production-ready models for internal resource forecasting, system health monitoring, and automated fault diagnosis.
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Rigorous Evaluation: Implement evaluation frameworks using RAGAS and DeepEval to ensure internal AI tools meet strict accuracy and latency standards.
Technical Skills:
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GenAI Stack: RAG, Lang Graph, Langfuse, Semantic Search, Re-ranking, and Vector Databases (OpenSearch).
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ML & Statistics: Expert mastery of Regression, Clustering, and Neural Networks, with the ability to design controlled experiments and A/B tests.
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NLP Expertise: BERT, Transformers, and RASA (DIET Classifier) for building sophisticated internal conversational interfaces.
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DevOps & Infrastructure: Professional experience with Kubernetes, Helm, Microservices, and REST APIs to ensure AI models are seamlessly integrated into the client ecosystem.
Qualifications
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Education: Bachelors or Masters in Data Science , Computer science
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Seniority: 10+ years of end-to-end ML delivery in production
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Interview Ready: Prepared for deep-dive technical sessions, including live whiteboarding of AI architectures and statistical modeling.
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