Agentic Forward Deployed Engineer

HCLTech

Amsterdam

On-site

EUR 120,000 - 180,000

Full time

13 days ago

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Job summary

HCLTech is seeking an Agentic Forward Deployed Engineer in Amsterdam to embed with clients and transform business processes into autonomous agentic solutions using Python and ADKs. You will conceptualize, prototype, and ship single-agent and multi-agent systems, driving ROI and operational efficiency while maintaining Responsible AI governance.

You will lead a lean team, mentor engineers, and stay ahead with evolving agent frameworks and security practices.

Qualifications

  • Strong Python engineering with idiomatic, typed, tested code and solid software principles.

Responsibilities

  • Conceptualize business problems as agentic solutions and prototype working agents quickly.
  • Design and ship single-agent and multi-agent systems in Python using ADKs to automate client workflows.
  • Drive delivery and operational efficiency through measurable ROI and reduced cost-to-serve.
  • Engineer the agent core with prompt/context engineering, memory, tool calling, and MCP integration.
  • Integrate agents into client ecosystems via secure APIs and authentication patterns.
  • Build reusable agent components and templates with guardrails for safety and predictability.
  • Prototype and iterate from scaffold to production-grade code with eval-driven development.
  • Own AgentOps/DevSecOps: CI/CD, observability, and governance from day one.
  • Lead and mentor a small engineering team and set technical direction.

Skills

Python engineering
Agent development kits
Prompt engineering
Context engineering
MCP integration
Multi-agent orchestration
DevSecOps
Client-facing
Mentoring

Tools

Google ADK
LangGraph
CrewAI
OpenAI Agents SDK
AWS Bedrock AgentCore
Semantic Kernel

Job description

HCLTech is a global technology company, home to more than 220,000 people across 60 countries, delivering industry-leading capabilities centered around digital, engineering, cloud and AI, powered by a broad portfolio of technology services and products. We work with clients across all major verticals, providing industry solutions for Financial Services, Manufacturing, Life Sciences and Healthcare, Technology and Services, Telecom and Media, Retail and CPG, and Public Services.

As an Agentic Forward Deployed Engineer, you operate at the front line of delivery - embedded with the client, turning ambiguous business problems into production agents, fast. Your deliverable is Business Transformation Agents: autonomous and multi-agent systems that automate and reimagine real business processes such as invoice disputes, procurement approvals, onboarding, claims and compliance workflows. You own each agent end to end -conceptualize, build, integrate, evaluate, deploy, and sustain - and you lead a small team to do the same. You build exclusively in Python using agent development kits, and you bring Agentic AI capabilities to life inside the client's world, with Responsible AI, evaluation and security as non-negotiables.

Frameworks: Agent Development Kits (ADKs) ; e.g. Google ADK, LangGraph, CrewAI, OpenAI Agents SDK, AWS Bedrock AgentCore, Microsoft Agent Framework / Semantic Kernel. Framework choice follows the engagement; the discipline is the same.

Models: Multi-LLM via the kit (e.g. Claude on Bedrock, Gemini, Azure OpenAI), selected per use case for quality, latency and cost.

Interfaces: Tools and Model Context Protocol (MCP) for integration; standards-based APIs and secure auth for client systems.

What you\'ll do

  • Conceptualize fast: embed with stakeholders, frame a business process as an agentic solution, and stand up a working agent prototype in days, not weeks.
  • Build Business Transformation Agents: design and ship single-agent and multi-agent systems in Python using ADKs that automate and transform real client workflows, with measurable ROI.
  • Own efficiency as the scorecard: drive delivery efficiency and operational efficiency ; shorter cycle times, less manual effort, higher accuracy, lower cost-to-serve.
  • Engineer the agent core: apply prompt engineering, context engineering, prompt caching, RAG / context-graph retrieval, memory, tool / function calling, MCP integration and multi-agent orchestration.
  • Integrate to standards: connect agents into client ecosystems through proven integration patterns, standards-based APIs and secure authentication.
  • Make reusability and predictability the default: build reusable agent components, skills, tool libraries and templates; add guardrails so agent behaviour is predictable, safe and repeatable.
  • Prototype and iterate quickly: use the kit\'s scaffolding to prototype, then harden to production-grade, well-tested Python.
  • Run eval-driven development: build evaluation harnesses and test suites that measure agent correctness, safety and regression before anything ships.
  • Own AgentOps / DevSecOps: CI/CD for agents, versioning, observability and telemetry, shift-left security, and Responsible AI governance baked in from day one.
  • Run a continuous, adaptable feedback loop: feed production telemetry, evals and client feedback back into prompts, context and agent design.
  • Stay ahead of the curve: adopt evolving agent frameworks and patterns quickly, and bring field learnings back to the practice.
  • Lead and mentor: set technical direction for a lean team of 3 agent engineers, raise the engineering bar, and grow the pod\'s agentic capability.

What you\'ll bring (must-have)

  • Strong Python engineering ; idiomatic, typed, tested and packaged code; on a foundation of solid software engineering principles (design, version control, architecture).
  • Hands-on agent building with at least one agent development kit (Google ADK, LangGraph, CrewAI, OpenAI Agents SDK, AWS Bedrock AgentCore or Microsoft Agent Framework / Semantic Kernel).
  • Solid command of agent engineering: prompt engineering, context engineering, prompt caching, RAG / context graphs, tool / function calling, MCP, and multi-agent orchestration.
  • Eval-driven development: designing evaluation harnesses and measuring agent quality, safety and reliability.
  • Standards-based integration and DevSecOps: APIs, secure auth, CI/CD, observability and AgentOps.
  • Ability to conceptualize a business problem as an agent quickly, and operate effectively in ambiguous, customer-embedded settings.
  • Client-facing maturity: translates fluidly between technical and non-technical stakeholders, and owns outcomes.
  • Experience mentoring or leading small engineering teams.

What great looks like (strongly preferred)

  • Fluency across multiple ADKs and the judgment to pick the right one per engagement.
  • Deploying agents to managed runtimes at enterprise scale (e.g. Vertex AI Agent Engine, Bedrock AgentCore) with governance and cost control.
  • Domain depth in a transformation area - finance operations, supply chain, HR, claims or compliance.
  • Experience with an enterprise agent platform, including Responsible AI and governance at scale.

A track record of turning agents into reusable accelerators or IP adopted beyond a single engagement.

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