AI Analytics Engineer

YDTS Global
  • Santa Clara, California
    30+ days ago

    Job Description

    Computer Vision Analytics Engineer – Medical Video/Image Analytics

    Job Description:

    We are seeking Computer Vision Analytics Engineers to support a Medical Video Analytics Project. This initiative integrates real-time
    medical video processing, AI-powered computer vision, and cloud-based analytics to enhance endoscopic procedures and MRI
    imaging.

    The role involves working on edge-to-cloud video processing pipelines, developing vision algorithms for real-time object detection,
    and building machine learning models that generate automated insights and recommendations for medical professionals.


    Key Responsibilities:

    • Work with real-time video feeds from robotic-assisted surgery and endoscopic procedures.
    • Support remote and in-hospital control workflows for AI-enhanced video analytics.
    • Process and analyze high-speed medical video streams at gigabit-per-second (Gbps) throughput.
    • Ensure secure transmission of MRI and endoscopic video feeds from edge devices to the cloud.
    • Develop scalable Edge-to-Cloud AI solutions, ensuring low-latency inference for various medical applications.
    • Implement AI models that analyze video content and classify frames as useful or non-useful.
    • Develop AI-driven video segmentation and classification models to filter relevant vs. non-relevant frames.
    • Develop object detection, segmentation, and tracking models to identify anatomical structures, surgical instruments, and
    procedural steps in real time.
    • Implement video enhancement and denoising techniques to improve image clarity and feature extraction.
    • Deploy deep learning-based models for medical video analytics using TensorFlow, PyTorch, and OpenCV.
    • Compare real-time footage with pre-trained medical video datasets to generate automated insights.
    • Develop containerized AI models (Docker, Kubernetes) to ensure scalable deployment in hospital environments.
    • Integrate AI-powered video analytics pipelines with cloud-based AI models (e.g., Azure AI)
    • Ensure seamless bi-directional communication between cloud AI models and edge computing systems.
    • Work closely with radiologists and healthcare professionals to fine-tune AI-driven video object detection and
    recommendations.
    • Integrate AI-powered video analytics solutions with existing hospital PACS, DICOM storage, and medical imaging
    infrastructure.
    • Ensure AI models comply with HIPAA, FDA, and medical device regulations for clinical deployment.

    Requirements

    Qualifications:

    • Demonstrated experience in computer vision, AI model development, and optimization.
    • Experience working with medical videos, including MRI, endoscopy, ultrasound, echo-cardiograms, and OCR-based
    recognition.
    • Proficiency in multi-modal AI, integrating various medical imaging sources.
    • Experience working closely with healthcare professionals and hospital workflows.
    • Experience integrating AI models with hospital IT systems, PACS, and DICOM-based workflows.
    • Proficiency in Python and experience with AI frameworks such as PyTorch, TensorFlow, OpenCV.
    • Expertise in computer vision techniques, including Object detection (YOLO, SSD, Faster R-CNN), Image segmentation (U-Net,
    Mask R-CNN), Image classification (ResNet, EfficientNet, ViTs), Feature extraction (SIFT, SURF, ORB)
    • Strong knowledge of machine learning techniques including Supervised, unsupervised, and self-supervised learning, CNNs,
    Vision Transformers (ViTs), GANs, attention-based networks, Random forests, SVMs, boosting algorithms
    • Proficiency in data preprocessing, augmentation, normalization, and handling large-scale image datasets.
    • Experience working with multi-GPU workloads for training and inference.
    • Experience deploying models using containerization technologies (Docker, Kubernetes).
    • Experience with high-performance computing (HPC) techniques for managing large-scale datasets.
    • Background in federated learning for medical AI to enhance privacy-preserving model training.
    • Prior experience in developing AI solutions for real-time clinical applications.
    • Strong understanding of regulatory constraints in AI-driven medical applications.
    • Ability to effectively communicate complex AI models to technical and non-technical stakeholders.

    Numbers & Facts

    LocationSanta Clara, California
    Websitehttps://www.ydtsglobal.com

    Skills

    • Algorithmsunmatched
    • Analysis Skillsunmatched
    • Artificial Intelligence (AI)unmatched
    • Clinical Information Systemsunmatched
    • Cloud Computingunmatched
    • Communication Skillsunmatched
    • Computer Skillsunmatched
    • Computer Systemsunmatched
    • Computer Visionunmatched
    • Data Setsunmatched
    • Deep Learningunmatched
    • Digital Imaging and Communications in Medicine (DICOM)unmatched
    • Dockerunmatched
    • Endoscopyunmatched
    • FDA (Food and Drug Administration)unmatched
    • GPU (Graphics Processing Unit)unmatched
    • HIPAA (Health Insurance Portability and Accountability Act)unmatched
    • Healthcareunmatched
    • Healthcare Softwareunmatched
    • Hospitalunmatched
    • Hospital Systemsunmatched
    • Information Technology & Information Systemsunmatched
    • Machine Learningunmatched
    • Magnetic Resonance Imaging (MRI)unmatched
    • Medical Equipmentunmatched
    • Medical Imagingunmatched
    • Medical Office Administrationunmatched
    • Microsoft Windows Azureunmatched
    • Picture Archiving and Communication System (PACS)unmatched
    • Python Programming/Scripting Languageunmatched
    • Regulationsunmatched
    • Scalable System Developmentunmatched
    • Solid State Drive (SSD)unmatched
    • Ultrasoundunmatched
    • Video Processingunmatched

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