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AI Engineer

Requirements

  • Proven experience building, deploying, and maintaining machine learning or LLM-based applications in a production environment.
  • Hybrid Technical Skills:
    • Backend Engineering: Proficiency in developing scalable, reliable backend services (mainly Python, Kotlin) with a focus on API design and microservices architecture.
    • Applied AI Engineering & MLOps: Hands-on experience with LLM frameworks, vector databases, MLOps tooling, prompt engineering, and successfully implementing advanced techniques like RAG. Demonstrated ability to manage models and prompt updates safely.
    • Data Engineering: Familiarity with building robust data pipelines, managing feature stores, and ensuring data quality for model consumption.
  • Infrastructure Expertise: Solid understanding and prior practical knowledge of cloud environments (specifically AWS) and deploying scalable containerized services (e.g., Kubernetes, Docker) are a big plus. Experience with model/LLM serving platforms (e.g., SageMaker, Bedrock, Vertex AI) is highly desirable.
  • A Focus on Outcome: A passion for moving fast and achieving tangible business outcomes (like decreasing escalation rates) by turning complex technical ideas into reliable, high-impact product features.
  • Passion for Knowledge Transfer and Feedback: You will become part of a collaborative, cross-functional team, with diverse levels of experience and seniority in AI. Our success is built on a foundation of mutual learning and teamwork.

What You'll Be Doing

  • Drive Fast Time-to-Market (TTM): Work collaboratively with relevant stakeholders (Data Science, Machine Learning Engineering, etc.) to iterate quickly on prototypes, ensuring a seamless and rapid transition of validated models and LLM applications into the production environment.
  • Productionize AI/LLM Prototypes: Act as the primary link between the DS/AI team's prototypes and the customer-facing product. You will refactor, deploy, and maintain robust, performant AI services (including LLM-powered features and intelligent agents) in a high-traffic production environment.
  • Build Observability and Measurement Systems: Implement comprehensive observability solutions (evaluations, metrics, tracing, logging) for all deployed AI features. Design and execute a framework for measuring output quality, A/B testing different models/prompts, and iterating on performance in real-time.
  • Architect for Reliability and Scale: Collaborate within the team to design and implement the technical architecture, data pipelines, and orchestration systems necessary to support AI services. Focus on building highly available, low-latency APIs and ensuring proper monitoring, logging, and failure handling across the entire lifecycle.
  • Design and Deploy Custom AI Services: Collaborate with the Platform Engineering team on leveraging foundational models (like those from AWS Bedrock/Anthropic) managed by them. Your focus will be on designing, building, and deploying the surrounding application logic and custom components, such as Model Context Protocol (MCP) servers, Agents that interact with those foundational models.
  • Apply Advanced AI Techniques: Directly implement and optimize advanced Applied AI techniques, such as Retrieval-Augmented Generation (RAG), Model Context Protocol (MCP), Agent-to-Agent (A2A) flows, and fine-tuning methodologies.
  • Contribute to Discovery: Leverage your deep understanding of system constraints, data availability, and production feasibility to proactively identify and recommend new AI use cases, working closely with Product and Data Science.

Perks and Benefits

  • Accelerate your career growth by joining one of Europe’s most talked about disruptors 🚀.
  • Employee benefits that range from a competitive personal development budget, work from home budget, discounts to fitness & wellness memberships, language apps and public transportation.
  • As an N26 employee you will have access to a Premium subscription on your personal N26 bank account. As well as subscriptions for friends and family members.
  • Additional day of annual leave for each year of service.
  • A high degree of autonomy and access to cutting edge technologies - all while working with a friendly team of peers of diverse nationalities, experiences, and backgrounds.
  • A relocation package with visa support for those who need it.
AI Summary ✨
N26 logo

N26

Barcelona, Spain

Experience: Mid-level
Posted: July 21, 2026
Last seen: an hour ago
Aws
Docker
Kotlin
Kubernetes
Python
machinelearning

Why we track N26

N26 is a Berlin-based mobile bank that's one of Europe's most well-known fintech companies. The engineering team builds banking infrastructure from scratch—payments, compliance, fraud detection. A solid pick if you're interested in European fintech.

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