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AI Application Engineer – AI Products; LLM & RAG); m​/f​/d

Online/Außer Haus - Idealerweise für Kandidaten in
10115, Berlin, Berlin, Deutschland
Unternehmen: Machine Learning Reply GmbH
Fernarbeit/Heimarbeit position
Verfasst am 2026-09-15
Berufliche Spezialisierung:
  • Software Entwicklung
    Künstliche Intelligenz Ingenieur, Maschinelles Lernen, Backend Entwicklung, Cloud-Ingenieur - Software
Gehalts-/Lohnspanne oder Branchenbenchmark: 85000 - 120000 EUR pro Jahr EUR 85000.00 120000.00 YEAR
Stellenbeschreibung
Stellenbezeichnung: AI Application Engineer – AI Products (LLM & RAG) (m/f/d)

At Machine Learning Reply, we help organizations turn cutting-edge AI technologies into real-world applications and scalable digital products.

To strengthen our team, we are looking for an AI Application Engineer who enjoys building AI-powered solutions and intelligent product features using modern machine learning and generative AI technologies.

While our GenAI Engineers focus on model development and AI architectures, AI Application Engineers focus on building user-facing AI applications and turning AI capabilities into scalable products.

In this role, you will work at the intersection of AI engineering, backend development, product development and cloud deployment, building production-ready AI systems that create real business value.

Tasks

As an AI Application Engineer, you design and build AI-powered applications and product features for enterprise clients.

Your projects may include:

  • Designing and developing AI applications, such as enterprise assistants, AI copilots, semantic search platforms and intelligent automation systems
  • Building LLM-powered applications using Retrieval-Augmented Generation (RAG) and modern AI frameworks
  • Developing end-to-end AI products, integrating LLM APIs, enterprise data sources and backend services
  • Designing scalable AI microservices and APIs to integrate AI capabilities into enterprise platforms
  • Implementing vector search, embeddings pipelines and knowledge retrieval systems
  • Rapidly prototyping AI product features and proof-of-concepts and evolving them into production systems
  • Collaborating closely with product managers, designers, AI engineers and enterprise customers to develop impactful AI solutions
  • Deploying AI systems to cloud platforms and production environments using modern Dev Ops practices
  • Ensuring reliable, scalable and observable AI services through CI/CD pipelines, monitoring and containerized deployments
Benefits
  • Work in an open and collaborative environment within the global Reply network and build next-generation AI applications and intelligent digital products
  • Collaboration with interdisciplinary teams including AI engineers, software developers and data scientists across industries such as Banking, Insurance, Automotive and Retail
  • A very active social program including paid training, conferences, communities of practice, hackathons and Reply XChange
  • Monetary Benefits include:
    Mobility package, Gym subsidy & Well Pass, Insurance & Pension Scheme, Corporate Savings Plan, KiTa and Childcare Allowance
  • Flexible work arrangement between home office, EU-wide workation options, on site office-work in our downtown Munich office with access to Stammstrecke, and client on site visits
Requirements
  • Degree in Computer Science, Software Engineering, Data Science or a comparable technical field
  • Convincing communication and presentation skills in German and English in order to participate in workshops of both languages
  • Strong programming skills in Python and modern backend frameworks
  • Experience building applications using AI, machine learning or generative AI technologies
  • Familiarity with Retrieval-Augmented Generation (RAG) and vector databases
  • Familiarity with cloud platforms such as AWS, Azure or GCP
  • Engaging directly with enterprise clients to understand their business challenges and identify high-impact opportunities for AI-driven solutions
Nice to have
  • Experience running technical workshops or facilitating solution design sessions
  • Experience developing APIs, microservices and scalable backend systems, including vector databases
  • Experience with containerization and Dev Ops practices (Docker, CI/CD pipelines, Kubernetes or similar)
  • Experience with frameworks such as Lang Chain, Llama Index or Hugging Face
  • Experience deploying AI services in cloud environments
  • Knowledge of AI observability, monitoring, and evaluation of LLM systems
Example projects you may work on
  • Enterprise AI knowledge assistants
  • AI copilots for internal business tools
  • Semantic search platforms for enterprise data
  • Document intelligence systems powered by LLMs
  • AI agents and automation systems for enterprise workflows
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