Edge Compute Architect Optical Systems - analogdevices
Listed on 2026-09-07
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Engineering
Systems Engineer, Electronics Engineer
Analog Devices, Inc. (NASDAQ: ADI ) is a global semiconductor leader that bridges the physical and digital worlds to enable breakthroughs at the Intelligent Edge. ADI combines analog, digital, AI, and software technologies into solutions that combat climate change, reliably connect humans and the world, and help drive advancements in automation and robotics, mobility, healthcare, energy and data centers. With revenue of more than $11 billion in FY25, ADI ensures today's innovators stay Ahead of What's Possible.
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The Analog Garage is ADI’s Research and Advanced Development Center in downtown Boston and empowers ADI by pioneering breakthrough technologies. The Deep Tech Innovation group within the Analog Garage brings together systems architecture, advanced semiconductor and fabrication capabilities, and multidisciplinary science to invent, prototype, and validate new technology platforms.
The Deep Tech Innovation group is seeking an experienced Edge Compute Architect for Optical Systems to develop high impact solutions to challenges in human health, autonomy & intelligence, energy, and other strategic focus areas for ADI. We are seeking a digital-first architect with experience in advanced optical systems, to define, integrate, and evaluate compute architectures close to the sensor, and validate end‑to‑end performance.
The successful candidate will play a central role in creating intelligent sensing platforms, leveraging ADI’s broad portfolio of advanced semiconductor technologies.
- Define dataflow and compute architectures for ASIC- or FPGA-based near‑sensor processing, including streaming pipelines, memory and bandwidth budgets, latency targets, and power constraints
- Map computational imaging, computer vision, and ML inference algorithms to hardware‑feasible forms; specify numerical precision and quantization strategies
- Own real‑time performance budgeting, including throughput and latency modeling, and drive architecture decisions that enable real‑time reconstruction and analysis
- Partition functionality across ASIC/FPGA, embedded processors, and software; define interfaces and performance requirements
- Co‑design end‑to‑end sensing systems—optics, sensor, readout, and compute—and perform trade studies across SNR, resolution, dynamic range, throughput, latency, robustness, and complexity
- Develop or adapt physics‑based models of sensor system performance and validate predictions against laboratory and field measurements
- Lead system‑level prototyping and integration including sensor, optics, electronics, and FPGA, as well as instrumentation and data pipelines
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