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Head of AI Engineering (f/m/x)

🏒 neoshare βœ“ Verified Direct Employer
πŸ“ Frankfurt am Main ✈️ Visa Sponsorship Available πŸ•’ 2026-09-04 04:28:39
Work Model
πŸ“ Frankfurt am Main
Employment
πŸ’Ό Full-Time Direct
Recruitment Type
πŸ›‘οΈ Direct to HR Pipeline
πŸ›‘οΈ
Verified Direct Employer Opening: You are submitting directly to neoshare's recruitment pipeline with zero intermediary fees.

Role Overview & Responsibilities


Your mission

Own and evolve our AI engineering function β€” transforming a 15–20 person ML team from research-heavy to a high-throughput, production-grade organization. You’ll partner with the CTO on strategy, build the platform that unifies LLM access, RAG, and backend services, and ship reliable, scalable AI features that change how banks work.
Β 
Key responsibilitiesΒ 

  • Team leadership and org build
    • Hire, mentor, and develop a high-performing team; set the technical bar, operating rhythms, and code/research review practices
    • Organize sub-teams (e.g., Core Modeling, AI Platform/Infra, Integrations) with clear ownership, SLOs, andon-call
    • Manage roadmap, capacity planning, and delivery across parallel initiatives
  • Architecture and platform
    • Own the LLM gateway: unified APIs and proxy layers for multi-provider routing (OpenAI, Gemini, Bedrock), with rate limits, fallbacks, and cost tracking
    • Build high-performance RAG pipelines (ingestion, embeddings, vector stores, caching) with robust observability and safety guardrails
    • Partner with Java/NestJSteams to define clean async contracts, schemas, and eventing patterns; drive low-latency, scalable inference
  • Model lifecycle and operations
    • Lead end-to-end model and prompt lifecycle: data curation, training/fine-tuning, evaluation, deployment, rollback
    • Establish LLMOps/MLOps: model/prompt registries, CI/CD, canary/A/B tests, offline/online evals, drift and cost monitoring
    • Optimizeinference throughput and cost (autoscaling, batching, quantization/distillation, caching)
  • Strategy and collaboration
    • Translate company goals into an AI/ML roadmap with measurable outcomes; balance exploration with reliability and cost
    • Own build-vs-buy/vendor strategy for models, infrastructure, and data services; manage budgets and SLAs
  • Governance and security
    • Implement data privacy, security, and compliance practices (RBAC, secrets, auditability); track prompt/model lineage and reproducibility
    • Define incident response, runbooks, and postmortems for AI features


Your profile

  • 5+ years as a backend engineer and 4+ years leading AI/ML engineering in production (10+ years total experience ideal)
  • Deep architectureΒ expertiseΒ in Java (JVM) and/or Node.js (NestJS), distributed systems, APIs, microservices, and messaging/streaming
  • Hands-on with LLM stacks: orchestration (e.g.,LangChain/LlamaIndexor custom), vector DBs (Pinecone,Qdrant, FAISS), cloud AI (e.g., AWS Bedrock)
  • Proven operation of systems at scale (millions of daily API calls) with strong SLOs, observability, and incident management
  • MLOpsfoundations: model registries, experiment tracking, CI/CD, Kubernetes,IaC(e.g., Terraform), security best practices
  • Excellent communication and stakeholder management; strong product sense focused on shipping user-facing featureΒ 
  • Fluent German and English for daily team collaboration, stakeholder management, and technical documentation
Nice to haveΒ 
  • Experience with GPU/accelerator serving and optimization (vLLM, TGI, Triton, ONNX Runtime)
  • Cost optimization for LLM workloads (token budgets, dynamic routing, caching)
  • Evaluation and safety/red-teaming for generative systems; startup/high-growth experience
Impact metricsΒ 
  • Platform: adoption of a unified LLM gateway; standardized observability and cost reporting
  • Delivery: 2–3 user-facing AI features shipped with clear SLOs and measurable impact
  • Reliability/cost: reduced average latency and cost per request; autoscaling and caching in place
  • Org: sub-team structureestablished; improved code quality and on-time delivery; targeted hiring completed
Our stack Β 
  • Backend: Java (JVM), Node.js (NestJS); event-driven microservices; API gateways/proxies
  • AI platform: Python,PyTorch, LLM orchestration, prompt pipelines/registry; vector DBs (Pinecone,Qdrant); RAG services
  • Infra/DevOps: AWS (incl. Bedrock), Kubernetes, Terraform, CI/CD, Observability (OpenTelemetry, Prometheus/Grafana)


Why us

  • Because we value talent more than hierarchy.
  • Because at neoshare, responsibility isn't delegated - it's owned.
  • Because we use modern AI and technology as a lever for exceptional results.
  • Because we develop people who want to learn, grow, and deliver.
  • Because performance, quality, and impact belong together for us.
  • Because we are working together towards building a European tech champion.


What You Can Expect

  • Performance-driven, above-average compensation that rewards outstanding commitment.
  • High-end offices designed to support collaboration, wellbeing, and peak performance - including great health and fitness benefits.
  • Legendary team events where we celebrate our wins together and strengthen team spirit.
  • State-of-the-art AI tools, first-class equipment, and an environment that fosters ownership and personal growth.
  • Concentration of top talent, fast decision-making, and the chance to make a real impact early on.

Candidates must have the right to work in the EU; visa sponsorship is not provided for this role.Β 

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Frequently Asked Questions

How do I apply for the Head of AI Engineering (f/m/x) position at neoshare?

Click the “Apply for this Position” button on this page to submit your application directly to neoshare's HR pipeline without recruitment agency markups.

Is this role eligible for remote work or international relocation?

This position is based in Frankfurt am Main with potential relocation and visa sponsorship considerations for qualified candidates.

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No. Jobflixs is 100% free for all job applicants. We strictly prohibit recruitment fees or candidate placement charges.

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