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PwC

Data Scientist Manager - Generative AI

Bengaluru, Gurugram, Hyderabad · hybrid
via TheirStackBachelor's degree8+ yrs

First seen Oct 1 · seen live today · via TheirStack

Skills mentioned

pythonazuredockerkubernetesmachine learningdata science

The posting, as published

- Leading the design and development of advanced data solutions to transform raw data into actionable insights - Guiding teams in leveraging advanced analytics and statistical techniques for data-driven decision making - Utilizing machine learning and artificial intelligence to enhance data science workflows and predictive modeling - Developing and implementing data pipelines and data lakes to support complex data analysis - Overseeing the creation of data visualizations to solve complex business problems and inform strategic decisions - Collaborating with client teams to identify opportunities for data-driven growth and innovation - Mentoring team members to develop their skills in data science and analytics - Validating data quality and integrity within analytics frameworks - Encouraging the adoption of innovative technologies and leading practices in data engineering - Addressing and resolving conflicts or issues with clients and team members to maintain project timelines and deliverables What You Must Have - At least a Bachelor's & Master's degree - At least 8 years of experience - Oral and written proficiency in English required What Sets You Apart - Over 3 years of experience in developing and scaling Generative AI projects from prototypes to enterprise production, managing throughput, latency, cost, and multi-region deployments. - Proven expertise implementing AI interoperability protocols like MCP (Model Context Protocol) and A2A (Agent-to Agent) at scale for seamless system integration. - Skilled in using enterprise cloud AI platforms such as Azure AI Foundry, Amazon Bedrock, and Google Vertex AI to build and deploy production-grade agentic AI solutions. - Advanced Python programming skills and hands-on experience with agentic AI frameworks including LangChain, LangGraph, CrewAI, and AutoGen for building robust generative AI applications. - Deep understanding of advanced Retrieval - Augmented Generation (RAG) architectures (Graph RAG, Vectorless RAG, Hybrid RAG) and traditional AI/ML fundamentals like model building, fine-tuning, and evaluation. - Strong knowledge of LLM security risksprompt injection, jailbreaking, data exfiltration, tool misuse—and experience designing defense-in-depth safeguards within agentic system architectures. - Expertise in containerization and cloud-native orchestration (Kubernetes, Docker, serverless) and event-driven architectures for scalable deployment of agentic AI workloads; holds relevant AI or solution architecture certifications.

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