Senior Staff Software Engineer, Linux Kernel

Posted Yesterday
8 Locations
In-Office or Remote
Senior level
Hardware • Manufacturing
The most energy-efficient general purpose processors ever made.
The Role
Own development of a Linux kernel-mode driver for a custom Fabric accelerator, including memory management, SMMU/IOMMU integration, MMIO, interrupts, power management, firmware, and user-space interfaces. Lead pre-silicon enablement using QEMU, simulation, emulation, and FPGA platforms; manage Linux boot and first-silicon bring-up. Debug complex hardware and kernel issues, establish automated testing, and collaborate with architecture, verification, compiler, and hardware teams.
Summary Generated by Built In

Efficient Computer is rethinking computing from the ground up to solve one of AI's biggest challenges: energy. Our Fabric architecture delivers a 10–100x improvement in energy efficiency for general-purpose computation, including AI, while supporting familiar programming languages and software frameworks—unlocking new possibilities for autonomous machines, intelligent infrastructure, wearables, and space systems. With our first processor, Electron E1, now shipping in volume and more than $97 million in Series B financing recently announced, we're accelerating customer deployments and scaling our architecture to data center performance. Join us to build the hardware and software that bring intelligence wherever it's needed and help shape the next generation of computing.

Efficient Computer is building the next generation of energy efficient, general-purpose processors designed around the Fabric architecture,  a novel spatial dataflow design spun out from decades of fundamental SOC research at CMU.

We are looking for a Senior Staff  Linux Kernel Driver Engineer to own the kernel-mode driver that brings our Fabric to life.  You will bring up new silicon from the very first boot, often before the silicon exists, working in QEMU, functional simulation, emulation, and FPGA environments to make sure our runtime software layers work on day one.  

This is a key role for the System Software team:  you will work closely with architecture, micro-architecture, verification and compiler teams during pre-silicon development and bring-up. 

Key Responsibilities

Own the Kernel Driver
  • Design, implement, and maintain the Linux kernel-mode driver for the Fabric accelerator.  This includes device discovery and probe, MMIO register interfaces, interrupt handling, command and completion queue management, power management, firmware, chip diagnostics, logging and device health, as well as abstracting the user-space ABI with a HAL that the runtime depends on.
  • Define how custom hardware accelerators are exposed to Linux: ioctl and sysfs interfaces, and the submission and synchronization model between application cores and the Fabric.
  • Keep the driver clean, upstreamable in style, and portable across kernel and device versions.
  • Implement the unified memory model between ARM cores and the Fabric accelerator.
  • Own SMMU (IOMMU) integration: stream and context configuration, tensor pool allocation,  page table management, stage-1 and stage-2 translation, shared virtual addressing, and fault handling.
Drive Pre-Silicon Bringup and Platform Enablement
  • Build and maintain QEMU device models and board definitions for the Fabric and its SoC so that the kernel, driver, and runtime can be developed and tested before silicon.
  • Own the Linux boot path on new platforms: boot firmware handoff, device tree, kernel configuration, early console, and root filesystem, from the first boot in emulation through FPGA prototypes to production silicon.
  • Lead kernel-side bring up on first silicon: validating MMIO map, interrupts, clocks, resets, and memory against the hardware specification, and turning what you find into bug reports and design feedback for the hardware team.
  • Be the go-to engineer for kernel debugging across the stack: crash dumps, KGDB and JTAG, ftrace and perf, lockdep and KASAN, and the hard-to-reproduce hangs and memory corruptions that only show up on real hardware.
  • Establish kernel-level test coverage, including driver unit tests, emulation-based regression suites, and hardware-in-the-loop validation.

Required Qualifications

  • B.S. in Electrical/Computer Engineering, Computer Science, or equivalent; M.S. a plus.
  • 7+ years of systems software experience, including significant hands-on Linux kernel-mode driver development for complex devices (accelerators, GPUs, NPUs, networking, or storage).
  • Deep understanding of Linux kernel memory management, including cache coherence, IOMMU/SMMU configuration, and unified or shared virtual memory between CPU and accelerators.
  • Hands-on experience with QEMU, emulation, or simulation environments, including writing or extending device models and board definitions.
  • Experience with pre-silicon hardware bring up and first-silicon enablement, working from hardware specifications and register maps before the platform is stable.
  • Experience designing runtime interfaces between kernel and user space: ABI and HAL design, synchronization, memory sharing, and error handling.
  • Strong kernel debugging skills across crash analysis, tracing, hardware debuggers, and race and memory-corruption diagnosis.
  • Fluency with memory-mapped I/O: register-level programming, ordering and barrier semantics, and interrupt handling.
  • Experience interfacing custom hardware accelerators to Linux.
  • Strong experience with ARM cores and the ARM architecture (AArch64, exception levels, GIC, SMMU, cache and memory attributes).
  • Solid understanding of the Linux boot flow: boot firmware, device tree, kernel initialization, and early platform enablement.
  • Expert C and strong scripting skills; comfortable working with AI-assisted development tools for code, analysis, and debugging.

Desired Qualifications

  • Experience with FPGA prototyping and hardware emulation platforms (Palladium, Zebu, Veloce, or similar).
  • Knowledge of dataflow, spatial, or other novel compute architectures, and of how compilers and runtimes target them.
  • Experience on a first-generation silicon product, where the software stack and the hardware matured together.
  • Experience working on a CUDA, ROCm, or other language runtime software stack.

We offer a competitive base salary for this role, generally ranging from $220,000 to $270,000, plus a 10% annual bonus, meaningful equity, and comprehensive benefits. Final compensation will depend on experience, level, and location, with flexibility for the right candidate.

Why Join Efficient?

Build what's next. At Efficient, you'll tackle big challenges with room to take ownership and make an impact. We back you with competitive pay, equity, a 401(k) match, company-paid benefits, paid parental leave, and flexibility—plus opportunities to grow your skills and career as we scale.

Skills Required

  • B.S. in Electrical or Computer Engineering, Computer Science, or equivalent
  • 7+ years of systems software experience
  • Significant hands-on Linux kernel-mode driver development for complex devices
  • Deep understanding of Linux kernel memory management, cache coherence, IOMMU/SMMU configuration, and unified or shared virtual memory
  • Hands-on experience with QEMU, emulation, or simulation environments, including device models and board definitions
  • Experience with pre-silicon hardware bring-up and first-silicon enablement
  • Experience designing kernel-to-user-space runtime interfaces, ABIs, HALs, synchronization, memory sharing, and error handling
  • Strong kernel debugging skills involving crash analysis, tracing, hardware debuggers, race diagnosis, and memory-corruption diagnosis
  • Fluency with memory-mapped I/O, register-level programming, ordering and barrier semantics, and interrupt handling
  • Experience interfacing custom hardware accelerators with Linux
  • Strong experience with ARM cores and ARM architecture, including AArch64, exception levels, GIC, SMMU, and cache and memory attributes
  • Solid understanding of Linux boot flow, boot firmware, device tree, kernel initialization, and early platform enablement
  • Expert C skills and strong scripting skills
  • Experience with FPGA prototyping and hardware emulation platforms such as Palladium, Zebu, or Veloce
  • Knowledge of dataflow, spatial, or other novel compute architectures and compiler/runtime targeting
  • Experience on a first-generation silicon product
  • Experience with CUDA, ROCm, or another language runtime software stack
  • Experience working with AI-assisted development tools for coding, analysis, and debugging
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The Company
HQ: Pittsburgh, PA
49 Employees
Year Founded: 2022

What We Do

Efficient is building the world’s most energy-efficient general-purpose processor by combining ultra-efficient hardware with an intuitive, developer-friendly compiler and software stack that unlocks 10–100× efficiency gains across every part of an application, including AI. Efficient was founded in 2022 to commercialize a breakthrough in efficient computation developed over nearly a decade by a team of world-leading computer architects. Efficient's world-class team has produced two silicon implementations of the Fabric architecture: the Electron E0, a prototype system-on-chip, and the Electron E1, the first silicon product. With Efficient's cutting-edge effcc Compiler and software stack, the Electron E1 processor has been delivered to customers as of mid-2025, ramping to large-scale volume and distribution in 2026. Efficient already has customer traction in areas such as physical AI for infrastructure and automation, space and defense, automotive, and consumer products. Efficient's technology scales from tiny “beyond the edge” devices to large-scale robotics, autonomy, edge cloud, and datacenter applications—enabling widespread adoption across multiple industries and positioning Efficient as the solution to the energy problem across all of computing.

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