Individuelle KI-Entwicklung
Standardlösungen passen nicht für jedes Problem. Wir entwickeln individuelle KI-Anwendungen speziell für Ihr Unternehmen.
Was wir entwickeln
Intelligente Anwendungen
Full-Stack-Anwendungen mit KI im Kern - von Datenpipelines bis zu Benutzeroberflächen.
Individuelle Modelle
Feinabgestimmte Modelle, trainiert mit Ihren Daten. Bessere Genauigkeit für Ihre Domäne.
LLM-Anwendungen
RAG-Systeme, KI-Agenten, Chatbots und Content-Generierung mit großen Sprachmodellen.
KI-Prototypen
Schnelle Proof-of-Concepts zur Validierung von Ideen. Ergebnisse in 2-4 Wochen.
Unser Tech-Stack
KI & Machine Learning
PyTorch, TensorFlow, scikit-learn, Hugging Face, LangChain, OpenAI API
Backend
Python, Django, FastAPI, Node.js, PostgreSQL, Redis
Cloud & Infrastruktur
AWS, GCP, Azure, Docker, Kubernetes, Railway
Typischer Zeitrahmen
PoC: 2-4 Wochen. MVP: 6-8 Wochen. Vollständiges Produkt: 3-6 Monate.
When is custom AI development the right choice over buying?
Custom AI development is the right choice in three situations: the workflow itself is your differentiator and no vendor models it, the data cannot leave your environment for regulatory or contractual reasons, or the available products solve eighty percent of the problem and the remaining twenty percent is where the value sits. Outside those, buying is usually faster and cheaper, and we will say so.
What gets built is a production system rather than a demonstration: a model, the pipeline feeding it, an evaluation harness that can be re-run, monitoring that detects drift, documentation sufficient to defend the system to an auditor, and a handover that leaves a named internal owner.
The part teams underestimate is not the model. It is the surrounding system: how data arrives on a Tuesday, what happens when the service is unavailable, and who retrains it in month nine.
Für wen das ist
- Teams whose process is genuinely non-standard and not served by a product.
- Regulated organisations where data cannot leave a controlled boundary.
- Companies that have outgrown a vendor tool and know exactly why.
- Businesses needing a system they can document and defend to an auditor.
What we need from you
- Representative data covering the variation you actually see.
- A named owner who will run the system after handover.
- The system the output has to land in, and access to it.
- A baseline measurement of the process as it works today.
What you get back
- A deployed system, not a notebook.
- A re-runnable evaluation harness and a held-out test set.
- Monitoring for data drift and performance drift.
- Technical documentation matched to your EU AI Act tier.
- Handover: architecture decisions written down, and a retraining plan.
What a typical engagement looks like
Document intelligence inside a data boundary
Extraction and classification over contracts, referrals or claims, deployed where the documents already live so nothing leaves the environment. Typically the fastest custom build to reach production.
A model where an off-the-shelf product nearly fits
Building only the part the product misses and integrating the rest, which is often a fraction of the cost of replacing the vendor and avoids owning what you do not have to.
A regulated system needing a defensible file
Development where the technical documentation, oversight design and traceability are deliverables alongside the model, because retrofitting them costs more than building them in.
Regulatory and data constraints
If the system lands in the EU AI Act high-risk tier, documentation, logging, human oversight and post-market monitoring are engineering requirements from the first sprint rather than a compliance exercise at the end. Teams that treat them as a final document discover it describes a system they cannot reproduce.
Where personal data is involved, data minimisation and retention are design decisions taken before collection. The GDPR duty to delete and the EU AI Act expectation of traceability pull in opposite directions, and the workable resolution separates the record you must keep from the personal data you must minimise, which only works if it is decided upfront.
Frequently asked questions
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