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AI / ML

Data Scientist – Medical AI

Caare

2+ yrsOn-site · Vishakhapatnam, Andhra Pradesh, IndiaFull-timeListed 6d ago
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About the role

structured by ORI

Data Scientist – Medical AI (Computer Vision & Physiological Signals) About the role Caare Healthtech Services is building clinical-grade AI screening modules: contactless cardiovascular monitoring from video (rPPG), oral cavity image analysis, and dermatological lesion classification. You'll own models end to end,…

What you will do

  • Train, fine-tune, and benchmark deep learning models for image classification, detection, and segmentation and for video-based signal extraction
  • Build preprocessing pipelines covering image quality gating, ROI detection, motion artifact and lighting correction, and signal denoising
  • Design rigorous evaluation: sensitivity/specificity, calibration, confidence scoring, and subgroup performance across skin tones, age, and demographics
  • Survey and reproduce recent research, and decide what's viable for production versus what's still a research claim
  • Package models as low-latency inference services (cloud and edge) with standardised outputs, audit logging, and secure APIs

What they are looking for

  • 2+ years in applied ML/data science, with models you personally trained and deployed
  • Strong PyTorch skills, with hands-on work in CNNs/ViTs, transfer learning, fine-tuning foundation models, and data augmentation for small or imbalanced datasets
  • Solid evaluation discipline: proper train/val/test splits, leakage prevention, statistical testing, calibration, and error analysis
  • Experience with medical imaging, biosignals, or other high-stakes domains
  • Ability to read papers critically and translate them into working code
  • Deployment experience with ONNX/TensorRT or similar, FastAPI, Docker, and at least one cloud platform

Nice to have

  • rPPG, PPG, or physiological signal processing (filtering, spectral methods, HRV analysis)
  • Experience with dermatology or oral pathology datasets (ISIC, HAM10000, or similar)
  • Fairness evaluation across skin types (Fitzpatrick scale)
  • Familiarity with GDPR, medical device software standards (IEC 62304, EU MDR), or clinical validation protocols
  • Publications or open-source work in medical AI
  • Edge/mobile model optimisation (quantisation, pruning)

Before you apply

  • To apply: Send your CV to contact@caare.in and one example of a model you trained and evaluated.

Benefits

  • Ownership of core models in a company that retains its technology
  • Competitive compensation
  • Flexible/remote working
Deep LearningComputer VisionPhysiological SignalsImage ClassificationSegmentationTransfer LearningData AugmentationSignal ProcessingPyTorchCNNsViTsONNXTensorRTFastAPIDocker
Full posting text

Data Scientist – Medical AI (Computer Vision & Physiological Signals)

About the role

Caare Healthtech Services is building clinical-grade AI screening modules: contactless cardiovascular monitoring from video (rPPG), oral cavity image analysis, and dermatological lesion classification. You'll own models end to end, from data and training through evaluation and deployment-ready inference APIs, in a small team with hard milestone deadlines. Beyond these modules, you'll also contribute to new AI projects as Caare's product portfolio grows.

What you'll do

Train, fine-tune, and benchmark deep learning models for image classification, detection, and segmentation (oral lesions, skin lesions) and for video-based signal extraction (HR, HRV, SpO₂, BP estimation, stress indices)

Build preprocessing pipelines covering image quality gating, ROI detection, motion artifact and lighting correction, and signal denoising

Design rigorous evaluation: sensitivity/specificity, calibration, confidence scoring, and subgroup performance across skin tones, age, and demographics, with honest reporting of limitations

Survey and reproduce recent research, and decide what's viable for production versus what's still a research claim

Package models as low-latency inference services (cloud and edge) with standardised outputs, audit logging, and secure APIs

Write technical documentation covering architecture, training methodology, validation results, and integration

Support clinical validation activities with technical evidence and fast iteration on feedback

Must have

2+ years in applied ML/data science, with models you personally trained and deployed

Strong PyTorch skills, with hands-on work in CNNs/ViTs, transfer learning, fine-tuning foundation models, and data augmentation for small or imbalanced datasets

Solid evaluation discipline: proper train/val/test splits, leakage prevention, statistical testing, calibration, and error analysis

Experience with medical imaging, biosignals, or other high-stakes domains

Ability to read papers critically and translate them into working code

Deployment experience with ONNX/TensorRT or similar, FastAPI, Docker, and at least one cloud platform

Strong plus

rPPG, PPG, or physiological signal processing (filtering, spectral methods, HRV analysis)

Experience with dermatology or oral pathology datasets (ISIC, HAM10000, or similar)

Fairness evaluation across skin types (Fitzpatrick scale)

Familiarity with GDPR, medical device software standards (IEC 62304, EU MDR), or clinical validation protocols

Publications or open-source work in medical AI

Edge/mobile model optimisation (quantisation, pruning)

What we offer

Ownership of core models in a company that retains its technology

Competitive compensation

Flexible/remote working

To apply

Send your CV to contact@caare.in and one example of a model you trained and evaluated, covering what metrics you used and what failure modes you found.

Seniority level: Entry level

Employment type: Full-time

Job function: Engineering and Information Technology

Industries: Public Health

Engineering and Information TechnologyPublic Health
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