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AI Automation Engineer

  • On-site, Hybrid
    • Vienna, Wien, Austria

Job description

Build the internal operating system for modern rehabilitation.

nyra health builds AI-powered rehabilitation software used in over 100 clinics across Germany and Austria. We've raised €20M in Series A funding and are scaling fast — expanding across DACH and preparing for the US market.

We have a proven product, clinical validation, and insurance reimbursement. Now we want to build the internal systems to match.

Our ambition is to operate as close to company as code as possible — where repetitive work is automated by default, not by exception, and people spend their time on the things that actually matter.

That's where you come in.

We're hiring an AI Engineer to help build the workflows, agents, and internal tools that make nyra faster, smarter, and more scalable — and to contribute to applied LLM work across our product.

You'll work across commercial, operations, customer success, product, clinical, finance, and people workflows — identifying bottlenecks, reducing manual work, and turning messy processes into systems. As part of the Machine Learning team, you'll also support in the design, implementation and improvement of the AI-driven features in our product.

🎯 Your main focus will be automating high-leverage internal workflows and helping nyra become an AI-native organization.

You'll combine hands-on automation skills, strong technical judgment, and a sharp eye for process design to create real business impact.

RESPONSIBILITIES

Workflow automation & internal systems

→ Design, build, and maintain automations across the company → Connect our core tools and data across teams → Reduce repetitive manual work and improve operational reliability → Take workflows from design through rollout, including monitoring, documentation, and failure handling

AI deployment & applied LLM work

→ Help identify high-value use cases for LLMs, copilots, and AI-assisted workflows → Build internal AI tools for summarization, drafting, triage, QA, and knowledge access → Contribute to applied LLM work in our product — iterating on prompts for exercises, implementing the backend of AI-driven features, and designing tests and evals to make sure LLMs behave as expected → Know when AI is the right answer — and when standard automation is better

AI evangelism & capability building

→ Stay up to date with the fast-moving AI tooling landscape → Be someone teammates across the company can come to with AI questions → Contribute to internal workshops, demos, and enablement materials → Help create repeatable playbooks, examples, and best practices that drive adoption

Process improvement & scale

→ Partner with teams to understand pain points and redesign workflows → Translate operational problems into robust systems → Track impact through time saved, cycle time reduction, throughput, and error reduction → Improve workflows continuously as the company scales

Reliability, privacy & trust

→ Build with safeguards, auditability, and resilience in mind → Handle sensitive data responsibly → Help apply practical guardrails for internal AI usage → Partner with engineering and ML to ensure systems scale well

Job requirements

Must-haves

🛠 Automation experience — You've built production workflows, integrations, or internal tools that people actually use

🧠 AI fluency — You're comfortable with LLMs, Claude Code, OpenAI Codex, prompting, agent workflows, retrieval, and evaluation

🧑 💻 Strong builder mindset — You think in systems, edge cases, maintainability, and scale

🔍 Evangelist mindset — You enjoy learning new tools, sharing what you find, and helping others adopt better ways of working

📊 Impact orientation — You care about real outcomes, not just shipping automations

🤝 Cross-functional communication — You work well with technical and non-technical stakeholders

🚀 Ownership — You can drive individual projects from idea to rollout in a fast-moving environment

Nice-to-haves

💼 Experience in healthtechdigital health, or another regulated environment

🐍 Familiarity with Python, TypeScript, SQL, APIs, and modern SaaS tooling

🔐 Experience working with privacy-conscious systems and sensitive data

📈 Experience building internal tooling in a high-growth startup

🧪 Experience shipping reliable LLM-powered features

The Process

  1. Intro call (~30 mins): Background, expectations, and an overview of nyra health and the role.

  2. Technical interview: A practical session with the Android team where you share a personal project and discuss software implementation and technical details.

  3. Meet with Founders: Discuss your approach, technical philosophy, and how you'd contribute to building the future of neurotherapy on Android.

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