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Agentic AI Architect; GCP
Job in
Windsor, Sonoma County, California, 95492, USA
Listed on 2026-01-17
Listing for:
Atos SE
Full Time
position Listed on 2026-01-17
Job specializations:
-
Software Development
AI Engineer, Machine Learning/ ML Engineer
Job Description & How to Apply Below
Position Title
Agentic AI Architect (GCP)
LocationRemote
Position TypeFull Time
Job DescriptionResponsible for:
Lead the design and development of an Agentic AI platform.
Deep expertise in machine learning, system architecture, and AI agent frameworks to build scalable, autonomous systems.
Architect and implement core systems for agent-based AI workflows.
Design and deploy LLM-based pipelines, agent orchestration, and vector-based memory systems.
Develop and optimize ML models, pipelines, and orchestration logic.
Drive technical strategy, tooling, and infrastructure decisions.
Architect and implement agentic AI systems leveraging GCP services (Vertex AI, Big Query, Cloud Functions, Pub/Sub, etc.).
Requirements- Industry
Experience:
Several years of industry experience in AI/ML and data engineering, with a track record of working in large-scale programs and solving complex use cases using GCP AI Platform/Vertex AI. - Agentic AI Architecture:
Exceptional command in Agentic AI architecture, development, testing, and research of both Neural-based & Symbolic agents, using current-generation deployments and next-generation patterns/research. - Agentic Systems:
Expertise in building agentic systems using techniques including Multi-agent systems, Reinforcement learning, flexible/dynamic workflows, caching/memory management, and concurrent orchestration. - Proficiency in one or more Agentic AI frameworks such as Lang Graph, Crew AI, Semantic Kernel, etc.
- Expertise in Python language to build large, scalable applications, conduct performance analysis, and tuning.
- Prompt Engineering:
Strong skills in prompt engineering and its techniques including design, development, and refinement of prompts (zero-shot, few-shot, and chain-of-thought approaches) to maximize accuracy and leverage optimization tools. - IR/RAG Systems:
Experience in designing, building, and implementing IR/RAG systems with Vector DB and Knowledge Graph.
- Programming
Languages:
Proficiency in Python is essential. - Agentic AI:
Expertise in Lang Chain/Lang Graph, CrewAI, Semantic Kernel/Autogen and Open AI Agentic SDK. - Experience with Tensor Flow, PyTorch, Scikit-learn, and AutoML.
- Generative AI:
Hands-on experience with generative AI models, RAG (Retrieval-Augmented Generation) architecture, and Natural Language Processing (NLP). - Familiarity with Google Cloud Platform (GCP).
- Data Engineering:
Proficiency in data preprocessing and feature engineering. - Version Control:
Experience with Git Hub for version control. - Data Science Practices:
Skills in building models, testing/validation, and deployment. - Experience working in an Agile framework.
- Experience with data ingestion, data retrieval, and data generation using optimal methods such as hybrid search.
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