AI Native SW Engineer

Accenture

Dublin

On-site

EUR 90,000 - 140,000

Full time

18 hours ago
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Job summary

Accenture is seeking an AI Engineer (Agentic/Applied) to design, build, and deploy production‑grade agentic AI systems across the enterprise stack, working with client engineering teams to scale patterns and accelerators.

You will lead design sessions, own RAG pipelines, and integrate multiple LLM providers with observability and cost controls, underpinning enterprise deployments across industries.

Qualifications

  • Production-grade software engineering in production environments.
  • At least 1 year deploying agentic AI solutions in production.
  • Experience with agentic orchestration frameworks at production depth.
  • Direct experience calling LLM APIs in production code.
  • RAG pipeline ownership including embeddings and vector databases.
  • LLMOps: eval harness design, prompt versioning, observability.
  • Cloud-native: Kubernetes, Docker, CI/CD, IaC.

Responsibilities

  • Design and build production-grade agentic systems end to end.
  • Build and own RAG pipelines and vector search.
  • Integrate across OpenAI, Anthropic, Vertex AI with fallback routing.
  • Implement LLMOps in production with observability and cost control.
  • Collaborate with client engineering teams through workshops and PoCs.
  • Create reusable patterns and playbooks for future engagements.
  • Define metrics for agent accuracy, latency, safety, and cost.

Skills

Production-grade software engineering
Agentic AI experience
Python
Java or backend
Production debugging
LLMOps
Cloud-native
Client collaboration

Tools

Kubernetes
Docker
LangGraph
CrewAI
AutoGen
LangSmith
Braintrust
Terraform
Helm

Job description

You build the systems that actually make AI work in enterprise environments, not demos, not prototypes that stall after a pilot, but production agentic architectures running inside real client organizations. The difference between an AI Engineer and what we are looking for is straightforward: you have shipped a multi-agent system in production, you have owned the eval harness, and you know what happens when your agent fails at 2am because you have lived it.

As an AI Engineer (Agentic/Applied), you will design, build, and deploy production-grade agentic AI systems across the full enterprise technology stack. You will work directly with client engineering teams, lead technical design sessions, and build reusable patterns and accelerators that scale beyond individual engagements.

This role sits at the heart of the AI engineering talent market — demand is growing faster than supply and will continue to do so. We offer what no single product company can: breadth across every industry, every enterprise technology stack, and every level of organizational complexity, combined with vendor fellowship access inside Anthropic, OpenAI, Microsoft, and Google engineering teams and a direct pathway to the Forward Deployed Engineer programme.

Key Responsibilities
  • Design and build production-grade agentic systems end-to-end: multi-agent orchestration, RAG pipelines, policy-based routing, tool invocation, memory management, and lifecycle observability
  • Build and own RAG pipelines: embeddings, chunking strategy, vector search, context window engineering and tuning against real quality targets
  • Integrate and abstract across multiple LLM providers — OpenAI, Anthropic, Vertex AI, and open-source models — with fallback routing, token, cost, and latency management
  • Implement LLMOps in production: eval harnesses with real quality metrics, prompt versioning, observability tooling (LangSmith, Braintrust, or equivalent), cost and safety monitoring
  • Embed directly with client engineering teams to design, prototype, and deploy agentic solutions — workshops, proofs of concept, code-with sessions, and architecture walkthroughs
  • Build reusable patterns, accelerators, and playbooks that scale beyond the individual client engagement and enable the next one to start faster
  • Define and use metrics to measure agent accuracy, latency, safety, and cost-effectiveness; present findings and recommendations to client stakeholders in business terms
Job Qualifications
  • Software engineering experience in production environments
  • Minimum 1 year of hands-on experience designing and deploying agentic AI solutions in a production environment — non-negotiable
  • Demonstrated experience with agentic orchestration frameworks: LangGraph, CrewAI, AutoGen, or equivalent — at production depth, not tutorial level
  • Direct experience calling LLM APIs (OpenAI, Anthropic, Vertex AI) in production code: provider abstraction, token management, latency and cost tradeoffs
  • RAG pipeline ownership: embeddings, chunking strategy, vector databases, and context engineering
  • LLMOps fundamentals: eval harness design, prompt versioning, and production observability
  • Cloud-native engineering maturity: Kubernetes, Docker, microservices, serverless, CI/CD, and IaC (Terraform or Helm)
  • Strong Python; Java or equivalent backend language acceptable; production debugging and observability experience
  • Quality of experience is weighted over years, a candidate who has shipped three production agentic systems in four years is preferred over a generalist with passive AI exposure
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