Cloud Platform Architect
Accenture
Project Role : Cloud Platform Architect Project Role Description : Oversee application architecture and deployment in cloud platform environments -- including public cloud, private cloud and hybrid cloud. This can include cloud adoption plans, cloud application design, and cloud management and monitoring. Must have skills : Google Cloud Platform Architecture Good to have skills : NA Minimum 7.5 year(s) of experience is required Educational Qualification : 15 years full time education
Summary
As a GenAI & Agent Development Lead, you will be responsible for developing and delivering agent-based AI applications and platforms using Google Agent Development Kit (ADK) and Google Cloud AI services. Your typical day will involve applying Generative AI models (Gemini), RAG-based retrieval, and agent orchestration patterns to build intelligent, scalable, and production-ready AI solutions. You should have strong hands-on experience in designing, building, deploying, and optimizing AI agents, with a growing ability to guide teams and contribute to solution design. Roles & Responsibilities Solutioning and designing agent-based GenAI applications and systems using Google ADK and Vertex AI Design, develop, and maintain AI agents and agent workflows, including single-agent and multi-agent patterns and Agent-to-Agent (A2A) communication flows Implement MCP-based orchestration concepts for agent execution, control, and coordination Build RAG pipelines, including data ingestion, chunking strategies, embedding generation, and retrieval optimization Contribute to Graph RAG implementations, leveraging knowledge graphs for enhanced reasoning and context Implement Gemini Enterprise–based solutions, grounding models on first-party (1P) enterprise data and third-party (3P) systems and data sources Apply Vertex AI Machine Learning services for embeddings, inference, evaluation, and pipelines Integrate agents with enterprise systems, APIs, tools, and workflows Apply prompt engineering techniques, including role prompting and prompt chaining Assist in implementing agent observability, including logging, tracing, and quality monitoring Follow secure agent design practices, including controlled tool access and safe execution Document technical designs, agent workflows, and deployment setups Provide technical guidance to L9/L10 team members and support Manager in delivery execution Professional & Technical Skills Must Have Skills Hands-on experience with Google Agent Development Kit (ADK) Strong understanding of Generative AI and Gemini models Experience with RAG architectures and chunking strategies Working knowledge of Agent-to-Agent (A2A) patterns Familiarity with MCP or similar agent orchestration concepts Experience with Vertex AI Machine Learning services Prompt engineering and agent workflow design Strong programming skills in Python (or Node.js) Good To Have Skills Knowledge of Graph RAG / Knowledge Graph integration Cloud data architecture on Google Cloud Google Cloud certifications (Google Cloud Machine Learning Services / Cloud Architect) Experience with enterprise-grade CI/CD and production pipelines
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