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Accenture Kochi is seeking a Lead Data Scientist (Level 9) with 5+ years of experience in data science, ML, and applied AI. The role focuses on production-grade ML development, deployment, and monitoring across Azure, AWS, or GCP, working with Python and major ML frameworks.
You will collaborate with data engineers, ML engineers, architects, and business stakeholders to deliver scalable, explainable ML solutions that drive business impact in a production environment.
Lead Data Scientist - Level 9 - ACS Song Management Level: Level 9 – Lead/Specialist
Kochi
Data Science and Machine Learning
Experience: 5-8 years of experience is required
Graduation (Accurate educational details should capture)
We are seeking a Senior Data Scientist specializing in production-grade Machine Learning model development and deployment with 5+ years of experience in data science, machine learning, statistical modeling, and applied AI solutions. The role will focus on designing, developing, validating, and operationalizing machine learning models that solve real business problems and are deployed into production environments rather than limited proof-of-concept implementations. The ideal candidate should have hands-on experience with at least one major cloud platform such as Azure, GCP, or AWS, along with strong knowledge of Python, ML frameworks, model evaluation, feature engineering, MLOps, and production model monitoring. This position requires close collaboration with data engineers, ML engineers, architects, product teams, and business stakeholders to deliver scalable, reliable, explainable, and business-impact-driven ML solutions.
Strong analytical, troubleshooting, and problem-solving skills. Ability to work effectively with architects, product owners, data engineers, backend developers, DevOps teams, and business stakeholders. Strong communication skills (English) with the ability to participate in technical discussions and explain implementation approaches clearly. Proactive mindset with ownership of assigned features, production issues, experimentation, and continuous improvement. Comfortable working in agile teams and participating in sprint planning, technical discussions, demos, code reviews, and implementation activities.
1–2 years of hands-on experience in Agentic AI, LLM application development, AI agents, RAG-based solutions, GenAI workflow automation, or multi-agent systems. Minimum 5 years of professional experience in backend development, data engineering, or a combination of both. Experience building production-grade applications, APIs, data pipelines, automation workflows, enterprise integrations, or cloud-native services. Hands-on experience or implementation exposure with MCP – Model Context Protocol for connecting AI agents or LLM applications with tools, APIs, enterprise systems, and external data sources. Hands-on experience or working knowledge of A2A – Agent2Agent Protocol or similar agent interoperability patterns for enabling communication, coordination, and collaboration between AI agents. Prior experience working in cloud-based environments and deploying scalable, reliable, and secure solutions Hands-on experience with at least one major AI cloud platform: AWS Bedrock, Azure AI Foundry, or GCP Vertex AI. Strong understanding of Agentic AI concepts such as tool calling, planning, reasoning, memory, multi-agent workflows, orchestration, autonomous task execution, and agentic workflow design. Experience working with MCP clients, MCP servers, tool registration, tool execution, context retrieval, and secure integration of external systems with LLM applications. Experience with A2A-based or multi-agent communication patterns, including agent discovery, capability exchange, task handoff, inter-agent messaging, and collaborative workflow execution. Experience with LLM application frameworks such as LangChain, LangGraph, Semantic Kernel, LlamaIndex, AutoGen, CrewAI, or similar frameworks. Strong programming skills in Python; experience with Java, Node.js, or other backend technologies is an added advantage. Experience developing backend services, REST APIs, microservices, event-driven applications, or integration layers. Good understanding of Retrieval-Augmented Generation, embeddings, vector search, semantic search, chunking strategies, document ingestion, and prompt engineering. Familiarity with vector databases or search platforms such as Azure AI Search, Amazon OpenSearch, Pinecone, Weaviate, FAISS, Chroma, Milvus, or similar tools. Experience with Git-based development, code reviews, CI/CD pipelines, Docker, logging, monitoring, authentication, authorization, secrets management, and secure API integration. Strong experience designing and developing scalable backend systems, services, APIs, data processing solutions, or enterprise integration layers. Ability to integrate AI agents with databases, enterprise applications, third-party APIs, internal services, workflow systems, and external tools using protocols such as MCP where applicable. Experience with data ingestion, transformation, validation, metadata handling, structured data processing, and unstructured document processing. Good understanding of system design, performance optimization, error handling, observability, and production support.
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