Memory Validation Hardware Engineer
About the roleMemory is where a lot of system-level problems come to die. Marginal timing, a corner-case power state transition, a customer platform that fails one boot in ten thousand — these issues are expensive to reproduce, slow to root-cause, and they tend to come back.We're hiring an engineer onto our ASIC design team to change that. You'll own the data and automation layer for our memory subsystem: building the test infrastructure that catches instability early, turning lab and field data into insight, and feeding what you learn back into the design of our next-generation memory controllers.This is a role for someone who likes both the oscilloscope and the dataframe. You'll spend time in the lab on silicon bring-up and just as much time writing the automation that means nobody has to do that debug by hand next time.What you'll doCollect and analyze memory subsystem data from lab testing, customer platforms, and internal validation systems.Build automation for memory stability testing, performance characterization, speed binning, and regression analysis — expanding test coverage while cutting cycle time.Debug real customer issues alongside field teams and internal engineering groups, driving problems from first report to root cause to closure.Turn system behavior and failure analysis into insight that measurably improves memory controller robustness and performance.Influence future silicon. Propose architectural and design enhancements for next-generation memory controllers, backed by empirical data, customer feedback, and field experience.Validate power-saving features, characterizing them against performance, reliability, and power targets across a wide range of real-world use cases.Support silicon bring-up, qualification, and production readiness for memory subsystems.What you'll buildBeyond closing individual issues, this role exists to create durable leverage:Stronger memory stability and reliability across the product lineDramatically shorter debug and validation cycles through automationFaster root-cause analysis and issue closure — which customers feel directlyA lasting repository of memory characterization data and validation best practicesReal-world insight that shapes future memory controller designs, so recurring issues stop recurringWhat we're looking forRequired4+ years in memory validation, memory controller design, SoC validation, or a closely related areaHands-on experience with DDR4/DDR5, LPDDR4/LPDDR5, or comparable memory technologies, and working familiarity with the relevant JEDEC specificationsStrong Python (or equivalent) for test automation and data analysisPractical debug skills on real hardware: bench instrumentation, protocol analyzers, logic analyzers, boot and stability failure triageComfort with data at scale — you can take a pile of shmoo, margining, or regression results and find the signal in itAbility to work directly with customers and cross-functional teams under time pressureNice to haveSilicon bring-up or post-silicon validation experience on a production programUnderstanding of memory training, calibration, and signal integrity fundamentalsExperience with low-power state validation (self-refresh, power-down, DVFS-style transitions)Statistical analysis, ML, or dashboarding experience applied to hardware validation dataFirmware or driver-level exposure to the memory stackWhy this roleRunning memory at state-of-the-art speeds is genuinely hard, and it gets harder every generation. The margins shrink while the variables multiply: load, power, temperature, process spread. Silicon doesn't behave the way the simulations said it would, so the work becomes finding calibration and training approaches that hold up on real parts, in real systems, across the full operating envelope.Then there's the second problem, which is doing all of that fast. A characterization flow that works in the lab is not a production flow. Getting from one to the other, reliably and on schedule, is its own engineering challenge.And then there's DVFS, which is a beast in its own right. Validating frequency and voltage transitions without giving up stability or power targets means chasing failures that only appear at specific transition boundaries under specific conditions.If that sounds like the kind of problem you want to spend your time on, this role has a steady supply of them. It also comes with real visibility: the data you produce goes to the architects planning the next generation, the field teams supporting customers today, and the validation teams qualifying silicon tomorrow. The decisions you influence show up in shipping products.