Solution Architect - LangGraph & Agentic AI
- Location Amsterdam, North Holland, Netherlands
- Type Full-time
- Posted 2026-09-15
Original posting ↗ You apply on the company site — we never collect applications.
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Hard requirements to check first
- Clearance:not mentioned in the posting
- Work auth:not mentioned in the posting
Skills
RAGAWSAzureGCPAgentsObservability
Excerpt from the original posting
We are looking for an experienced Solution Architect with hands-on experience designing and deploying LangGraph-based AI solutions to lead the architecture of enterprise agentic AI platforms and applications. You will work with business and technology stakeholders to identify high-value AI opportunities and translate them into secure, scalable, and production-ready architectures. The role combines AI architecture, enterprise integration, cloud engineering, agentic AI, security, governance, and stakeholder leadership . You will be expected to understand LangGraph at a practical level and be able to challenge architectural decisions, guide engineering teams, and ensure that AI solutions can operate reliably at enterprise scale. AI Solution Architecture - Lead the architecture and design of enterprise AI agent and agentic workflow solutions . - Design LangGraph-based architectures for single-agent and multi-agent applications. - Translate business requirements, processes, SLAs, security requirements, and technical constraints into solution architectures. - Evaluate architectural alternatives and document key technical decisions and trade-offs. - Define reusable architecture patterns for agentic AI solutions. Enterprise Agent Architecture - Design architectures incorporating: - LLMs - LangGraph - RAG - Enterprise data - APIs and business systems - Workflow engines - Human approval processes - Observability - Security and governance - Define appropriate boundaries between AI reasoning and deterministic business logic. - Design state management, persistence, recovery, and long-running agent workflows. - Determine when to use single-agent, multi-agent, or conventional application architectures. Cloud and Platform Architecture - Design scalable AI application architectures on AWS, Azure, or GCP . - Define compute, networking, storage, API, security, and platform requirements. - Design architectures suitable for enterprise-scale production workloads. - Evaluate cloud services and AI platform capabilities based on performance, security, scalability, and cost. - Work with platform engineering and DevOps teams to establish deployment standards. Integration Architecture - Design integration between AI agents and enterprise applications, APIs, databases, and SaaS platforms. - Define secure mechanisms for agent tool access and business-system interactions. - Design authentication, authorisation, secrets management, and access-control approaches. - Ensure AI-driven actio…