Senior Full-Stack Developer / AI Engineer / Data Scientist
Job Description
REQUIREMENTS
- Several years of professional experience in full-stack development
- Strong knowledge of TypeScript and JavaScript
- Confident working with React.js, Next.js, Node.js, and Nest.js
- Experience with relational databases (PostgreSQL, MySQL, MS SQL)
- Hands-on experience with container technologies (Docker, Kubernetes)
- Familiarity with REST API design and Git workflows
- Solid Python skills, including common data/ML stacks (pandas, NumPy, scikit-learn, PyTorch, or TensorFlow)
- Experience across the end-to-end lifecycle of ML models: data preparation, feature engineering, training, validation, deployment, and monitoring
- Strong understanding of statistical fundamentals (hypothesis testing, regression, classification, time series)
- Experience with modern LLM workflows: prompt engineering, RAG, embeddings, vector databases (e.g. Pinecone, Weaviate, pgvector)
- Hands-on experience in model evaluation: metrics, benchmarks, A/B testing, and systematic evaluation frameworks
- Experience with notebook-based exploration environments (Jupyter, Colab) and transitioning them into production-ready pipelines
- Familiarity with MLOps tools (e.g. MLflow, Weights & Biases, DVC) is a plus
- Experience with Claude Code and/or Codex is highly appreciated — otherwise, a strong willingness to actively learn and adopt these tools
- Excellent German (C2) and English skills (minimum C1)
- Genuine interest in generative AI and agentic systems
- Builder mentality: you deliver production-grade software, not just prototypes
- Analytical mindset: you make data-driven decisions and critically evaluate model behavior
RESPONSIBILITIES
- Develop and maintain our full-stack applications within the modern JavaScript/TypeScript ecosystem
- Design and implement scalable backend services using Node.js and Nest.js
- Build high-performance frontend solutions with React.js and Next.js
- Design and optimize relational databases (PostgreSQL, MySQL, MS SQL)
- Containerize and orchestrate services using Docker and Kubernetes
- Develop and integrate REST APIs
- Build and operate data pipelines, feature stores, and ML workflows for our agentic systems
- Develop, train, and evaluate machine learning models for marketing use cases (attribution, targeting, forecasting, anomaly detection)
- Implement Retrieval-Augmented Generation (RAG) pipelines (embeddings, vector stores, re-ranking)
- Set up and maintain LLM evaluation frameworks, prompt optimization workflows, and systematic quality benchmarks
- Apply code harnesses (especially Claude Code and Codex) throughout the daily development process — from planning and implementation to code review
- Collaborate closely with the founding team on the product architecture of agentic systems
Are you interested in this position?
Apply by clicking on the “Apply Now” button below!
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