Healthcare

AI-ASSISTED MEDICAL IMAGE ANALYSIS

Fine-tune VLMs as a second reader for radiological imaging. Generate structured findings, differential diagnoses, and recommendations from MRI, CT, and X-ray inputs.

SegmentationVQAChain-of-Thought

Trusted By Teams At

THE CHALLENGE

THE PROBLEM.

Radiologists face imaging volumes growing at 30% annually. Fatigue-related diagnostic errors affect 3-5% of cases. AI assistance serves as a reliable second reader, catching findings that might be missed during high-volume reading sessions.

0%

Year-over-year growth in diagnostic imaging volume placing increasing pressure on radiologist capacity

3-5%

Percentage of diagnostic cases where fatigue-related interpretation errors affect the final reading

2x

Improvement in radiologist throughput when AI-generated preliminary reads are available for review

No Domain KnowledgeCan't Read ImagesFine-Tuned on Vi
THE BASELINE

GENERAL MODELS LACK DOMAIN EXPERTISE.

GPT-4o, Claude, and Gemini have broad knowledge, but zero understanding of your specific domain, standards, or terminology.

Unusable for clinical workflows
THE GAP

GENERAL MODELS CAN'T READ YOUR IMAGES.

Even with reference documents attached, foundation models cannot reliably interpret domain-specific visual data.

Location wrong. Not clinical-grade.
THE ANSWER

YOUR DATA, FINE-TUNED ON VI.

A model trained on your private data sees exactly what you see. Your domain. Your standards. Production-ready.

Clinical-grade. Deployed across 3 hospital sites.
96.8%
Sensitivity
94.2%
Specificity
120ms
Latency
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HOW VI SOLVES IT

FROM RAW IMAGES TO
PRODUCTION MODEL.

SEE IT IN ACTION

YOUR OUTPUT, YOUR FORMAT.

Structured reports, raw JSON, concise alerts. Control the output with system prompts and refine it with RLHF. The model speaks the way your application needs it to.

Generate a preliminary radiology report for this brain MRI with findings, differential diagnosis, and recommendations

INTEGRATION

INTEGRATE WITH YOUR IMAGING WORKFLOW.

Vi slots between image acquisition and final reporting. DICOM images enter the pipeline and produce structured preliminary reads with findings, diagnoses, and confidence scores. Results push to your radiology worklist and EMR via API. The model surfaces potential findings for the physician to confirm or dismiss.

Vi SDK and NVIDIA NIM containers provide OpenAI-compatible APIs. Connect to any system that speaks REST.

FAQ

MRI REPORT GENERATION
FAQ.

Everything you need to know about using Datature Vi for MRI Report Generation.

GET STARTED

SEE IT
IN ACTION.

30-minute walkthrough of Datature Vi applied to MRI Report Generation. Bring your own dataset or use ours.

Schedule a Demo

Walk through the full pipeline with an engineer. Annotation, training, evaluation, and deployment for your specific use case. 30 minutes.

Start Free

3,000 data rows and 300 compute credits free every month. All annotation modes, all model architectures, Vi SDK access. No credit card.

All annotation modes included
Qwen2.5-VL, InternVL3.5, Cosmos
Vi SDK with 4-bit quantization
Get Started

Enterprise Ready

View Trust Center

SOC 2 Type II

Audited annually

HIPAA Compliant

PHI safeguards

AES-256 + TLS 1.2+

Encrypted at rest and in transit

G2 High Performer

4.9/5 with 47 reviews

Your Data, Your Models

Full ownership and export

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START FREE.

3,000 data rows and 300 compute credits free every month. No credit card required.