Forward Deployed AI Engineer

Accenture DACH

Braunschweig

Vor Ort

EUR 120.000 - 160.000

Vollzeit

vor 7 Stunden
Sei unter den ersten Bewerbenden
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Zusammenfassung

Accenture DACH is seeking a Forward Deployed AI Engineer to embed with client teams, deploying and operating AI platforms across enterprise environments. You will own outcomes including time-to-value, reliability, and scalability, working shoulder to shoulder with client engineers and executives.

You will translate architecture to business impact, design scalable AI solutions, and create repeatable patterns and playbooks for clients to own after you leave.

Qualifikationen

  • 3-5 years engineering experience with cloud-native systems (APIs, microservices, containerization, serverless).
  • Minimum of 1 years of deep expertise in designing and deploying agentic solutions (agents, orchestration, context engineering, RAG, workflows) in production environments.
  • Minimum of 3 years of experience with AI platforms — OpenAI, Claude, Vertex AI, plus open-source models — including building abstraction layers to manage multi-provider pipelines.
  • Minimum of 10 years of experience deploying to production, CI/CD, infrastructure as code (Terraform, Helm), monitoring, and debugging.
  • Demonstrated end-to-end delivery ownership in a client-embedded environment, internal projects, vendor labs, or team-only deployments do not qualify
  • Proven ability to articulate business value: can quantify the impact of deployments in terms a CFO would recognize and act on
  • Experience presenting to and building trust with senior client stakeholders, CTO, CFO, or CISO level
  • Non-linear profiles are expected and welcomed, assessment is based on demonstrated deployment experience and outcome ownership, not CV pattern matching

Aufgaben

  • Embed directly with client teams to deploy, scale, and operationalize AI platforms inside enterprise environments.
  • Own production outcomes end-to-end: time-to-value, reliability, adoption velocity, and scalability, with business metrics attached.
  • Move from ambiguous business problem to working production system through rapid experimentation: days to prototype, weeks to production-ready.
  • Design and govern AI architectures across the full enterprise stack: identity, data, security, governance, platform layer, and workflow integration.
  • Translate technical architecture into business impact for client CTO, CFO, and CISO; shape use case roadmaps, ROI backlogs, and AI adoption strategy.
  • Build reusable patterns, playbooks, and accelerators that the client owns after you leave — enabling the client team to run it without you.
  • Lead design workshops, proofs of concept, architecture walkthroughs, and code-with sessions with client engineering and leadership teams.
  • Codify patterns and delivery learnings that scale across engagements and contribute to the growth of the FDE practice

Kenntnisse

Production engineering
AI deployment
Client engagement
Cloud-native

Tools

Terraform
Helm
CI/CD

Jobbeschreibung

This is not a consulting role. It is not a project delivery role. It is not a research position. A Forward Deployed AI Engineer is a production engineer who works embedded inside a client's enterprise, shoulder to shoulder with their teams, to make complex AI platforms work in real, messy organizational environments. You own outcomes: time-to-value, adoption, reliability, and scalability. Not delivery milestones. Outcomes.

The market is beginning to understand what leading technology companies have demonstrated: AI products fail not because the models are weak but because deployment is broken. The gap between a successful AI pilot and an AI capability that scales is bridged by engineers who can translate platform capability into measurable business value inside a real enterprise environment. That is this role.

Forward Deployed AI Engineers form the execution spine of our Reinvention Deployment Engineering pods. We are building the largest FDE capability in the services industry. The engineers who join at this stage will define what the role looks like at scale and will have access to the hardest enterprise AI problems in the market across every industry.

Key Responsibilities
  • Embed directly with client engineering and business teams to deploy, scale, and operationalize AI platforms — Anthropic, OpenAI, Microsoft, Google, Salesforce, SAP, or Palantir — inside enterprise environments
  • Own production outcomes end-to-end: time-to-value, reliability, adoption velocity, and scalability, with business metrics attached — not just delivery milestones
  • Move from ambiguous business problem to working production system through rapid experimentation: days to prototype, weeks to production-ready
  • Design and govern AI architectures across the full enterprise stack: identity, data, security, governance, platform layer, and workflow integration
  • Translate technical architecture into business impact for client CTO, CFO, and CISO; shape use case roadmaps, ROI backlogs, and AI adoption strategy
  • Build reusable patterns, playbooks, and accelerators that the client owns after you leave — enabling the client team to run it without you
  • Lead design workshops, proofs of concept, architecture walkthroughs, and code-with sessions with client engineering and leadership teams
  • Codify patterns and delivery learnings that scale across engagements and contribute to the growth of the FDE practice
  • 3-5 years engineering experience with cloud-native systems (APIs, microservices, containerization, serverless).
  • Minimum of 1 years of deep expertise in designing and deploying agentic solutions (agents, orchestration, context engineering, RAG, workflows) in production environments.
  • Minimum of 3 years of experience with AI platforms — OpenAI, Claude, Vertex AI, plus open-source models — including building abstraction layers to manage multi-provider pipelines.
  • Minimum of 10 years of experience deploying to production , CI/CD, infrastructure as code (Terraform, Helm), monitoring, and debugging.
  • Demonstrated end-to-end delivery ownership in a client-embedded environment, internal projects, vendor labs, or team-only deployments do not qualify
  • Proven ability to articulate business value: can quantify the impact of deployments in terms a CFO would recognize and act on
  • Experience presenting to and building trust with senior client stakeholders, CTO, CFO, or CISO level
  • Non-linear profiles are expected and welcomed, assessment is based on demonstrated deployment experience and outcome ownership, not CV pattern matching
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