Edge AI Solutions for Real-Time Intelligence

Overview

Babcom’s Edge AI services bring intelligence closer to the data source—empowering devices to make real-time decisions without relying on cloud connectivity. We design and deploy scalable, low-latency, and resilient edge AI systems tailored for industrial, smart infrastructure, automotive, and healthcare use cases.

What We Offer

  • AI Model Deployment at the Edge
    Compact LLMs, vision transformers, and time-series models optimized for edge inference on NVIDIA Jetson, ARM, Intel Movidius, and RISC-V.
  • Edge Containerization
    Modular, secure deployments using Docker, Podman, and K3s on constrained edge hardware for faster rollouts and scalable orchestration.
  • Real-Time Decision Engines
    Event-driven architectures processing sensor data with sub-100ms response times using MQTT, Kafka, and Pulsar.
  • Edge Protocol Gateways
    Translate BLE, Modbus, OPC UA, CAN, BACnet, and proprietary M2M protocols into a unified data fabric for seamless integration.
  • Edge-Based Asset Intelligence
    Real-time asset localization and tracking using UWB, RF triangulation, GPS, and sensor fusion.
  • AI Optimization & Compression
    Model pruning, quantization, and distillation for efficient edge inference with low power and memory consumption.

Industries We Serve

  • Smart Manufacturing: Predictive maintenance, defect detection
  • Infrastructure & Utilities: Decentralized control, load balancing
  • Connected Mobility: Real-time diagnostics, fleet edge AI
  • Healthcare: Local health monitoring, anomaly detection

Why Babcom?

  • Deep expertise in embedded systems & Edge AI
  • Proven deployments across cloud-edge ecosystems (Azure IoT Edge, AWS Greengrass, GCP)
  • Fast prototyping, resilient architectures, and secure OTA model updates

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