Full-Stack AI Engineer (Computer Vision & Back-end Focus)
StellDirVorMunichremote31 people scored this
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Description
StellDirVor is an independent consulting, trade and technology company specializing in immersive technologies for healthcare. We support organizations in implementing digital innovations — Virtual, Augmented, and Mixed Reality as well as AI — particularly for learning, training, and real-time assistance in clinical and care environments. By combining technology and healthcare, we help optimize processes, improve knowledge transfer, and enhance quality of care.
Supported by a Germany (ZIM) and Taiwanese (GIPIP) partnership grant, we are currently developing ARAIAS — an AR- and AI-based hands-free training and assistance system for chronic wound care. Using AR smart glasses, the system enables 3D wound capture, AI-supported analysis, and standardized remote expertise and documentation directly at the point of care. ARAIAS introduces a new approach to hands-on, safe, and evidence-based learning and training in clinical settings, with the long-term goal of reducing workload for healthcare professionals and improving care outcomes.
We're at an early and exciting stage — moving from concept to working prototype. The near-term focus is on validating the AI models, establishing the core technical foundations, and building toward a proof of concept we can test in real education and clinical settings. As the project matures, the work will naturally evolve from experimentation and prototyping into more structured development and productionization.
Notes:
Location for this role: Remote (Germany) - due to the nature of the project, we can only consider candidates who are already residing in Germany.
Tasks
Design and build AI models for wound analysis — from architecture decisions through evaluation and iteration, with a focus on getting to reliable, clinically meaningful outputs
Apply computer vision techniques — object detection, segmentation, depth estimation, or 3D reconstruction — to real medical imaging challenges
Handle pre-processing and post-processing of multi-sensor imaging data — including 2D images, depth maps, and other sensor inputs
Design and build REST APIs and cloud infrastructure that connect and support all system components
Prototype hardware-software integration — interfacing with smartglass SDKs and sensor APIs to establish data capture pipelines from device to back-end
Design and build REST APIs, cloud infrastructure, and data pipelines that connect and support all system components
Integrate AI models into application layers — inference endpoints, model serving, versioning, and performance monitoring
Make pragmatic architectural decisions appropriate for the current prototyping stage
Set up CI/CD, containerization, and basic observability to keep the team moving fast
Support integration points between the back-end / AI layer and the Unity-based front-end (nice to have)
Requirements
Must-Have
Hands-on experience with computer vision — image segmentation, object detection, and classification.
Experience designing and adapting model architectures — going beyond basic fine-tuning to make informed decisions about model structure, loss functions, and training strategies
Ability to evaluate model outputs critically — not just metrics, but understanding what the results mean in context
Back-end engineering proficiency — REST API design with Python as the primary language
Cloud platform experience (AWS / GCP / Azure)
Comfort working with hardware SDKs and APIs, and able to independently navigate technical documentation and integration guides to establish device-to-server data flows
Comfortable with Docker and basic CI/CD pipelines
Familiarity with ML tooling: PyTorch or TensorFlow
Fluent in English, German is a bonus
Given the early stage of the project and the lean team structure, we are looking for someone who can take initiative, own problems end-to-end, and make pragmatic technical decisions independently.
Strong Plus
Database experience — PostgreSQL, NoSQL, object storage (S3 / GCS)
Unity experience or familiarity with Unity's integration patterns
Familiarity with semi-supervised learning — leveraging limited or partially labeled data, relevant when annotated wound imaging data is scarce
Experience with 3D data pre-processing and post-processing — depth map handling, point cloud cleaning, mesh reconstruction, or similar
Familiarity with hardware SDK integration — experience interfacing with smart glasses, depth sensors, or similar hardware to extract and stream sensor data
Exposure to multi-modal learning — combining RGB and depth or LiDAR data into unified model inputs
Benefits
Meaningful work — You help shape how technology redefines education and training in healthcare, with real impact on clinical outcomes
Ownership and creative freedom — You work autonomously, contribute your ideas directly, and have a genuine say in how the system is built
A learning culture — We support personal and professional growth through knowledge sharing, access to innovative tools and methods, and a dedicated learning budget
Flexible working — Remote-friendly setup with the option to work from our Munich office
Flat hierarchies and team spirit — A small, open, and trust-based team where communication is direct and everyone's voice matters
International collaboration — Work alongside a Taiwan-based partner covering technology, hardware, and research
Notes:
Due to the nature of the project, we can only consider candidates who are already residing in Germany.
We are only able to respond to candidates selected for further consideration. If you have not heard from us within four weeks of applying, please consider your application unsuccessful at this time.
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Required skills
RemoteSoftware Development
Tech stack
PythonAWSGCPAzureDockerPostgreSQLREST
Benefits
Health insuranceLearning budget
About Munich, Germany
Cost of living
high
Avg tech salary
60K-100K EUR
Remote work
Hybrid common, enterprise tech hub
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Glassdoor rating3.5/5
Company Insights
Glassdoor rating
3.5