Machine Learning SoC Architect

The Meta Game, Inc.
Austin, TX, United States
5 days ago

Role details

Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Compensation
$212,000.0 - $294,000.0
Working hours
Regular working hours
Job source

Tech stack

Artificial Intelligence Application Performance Management C++ (Programming Language) Computer Programming Data Centers Software Debugging Microprocessors Firmware Python (Programming Language) Machine Learning Tensorflow Software Engineering
+7 more
High Performance Computing Performance Testing Application Specific Integrated Circuits Pytorch Low Latency Hardware Acceleration Physical Design

Job description

Meta is seeking a Machine Learning SoC Architect for its Silicon Engineering organization responsible for building custom silicon solutions that power the infrastructure underpinning Meta’s AI and data center workloads at scale. As an ASIC Engineer specializing in architecture, performance and modeling, you will define and drive the architectural definition, performance analysis, pre-silicon modeling, and microarchitectural exploration of custom ASICs designed for Meta’s Data Centers. In this role, you will own ASIC architecture specification, establish the performance modeling methodology and long-term silicon roadmap strategy, partnering with other silicon, and software teams to ensure Meta’s infrastructure silicon meets the demanding throughput, latency, and efficiency targets required at hyperscale., 1. Work on algorithm analysis, performance analysis and architecture definition of Machine Learning ASICs

  1. Map Data Center workloads to heterogeneous ASICs that contain multiple different programmable processors and hardware accelerators. Perform detailed calculations to specify computation throughput, memory bandwidth and latency
  2. evaluate performance v/s area v/s power tradeoffs
  3. Drive the architecture definition of one or more of the following ASIC sub-systems: compute, memory, Network-On-Chip (NoC), collectives, debug etc. and chiplet based multi-die SoCs
  4. Identify appropriate workloads and micro-benchmarks to be used for performance analysis and drive this analysis on simulation and emulation platforms to define and validate the architecture
  5. Evangelize your innovative architectural solutions with your peers and leadership, while mentoring members of the architecture team
  6. Collaborate with cross functional teams working on RTL design, Design Verification, Firmware/Software development, Pre-Post silicon validation and Program Management to deliver first pass functional silicon on an aggressive schedule
  7. Collaborate with software and firmware teams to ensure that the ASIC meets end to end application performance goals while maintaining ease and efficiency of software development

Requirements

  1. Experience and knowledge of Computer Architecture concepts such as microprocessor architecture, memory systems, on-chip interconnection networks, hardware/software partitioning etc
  2. 12+ years of prior experience in defining and delivering multiple high performance ASICs into production, with focus on architecture definition and performance analysis
  3. Experience in ASIC performance modeling, microarchitectural analysis, or pre-silicon simulation for custom silicon or SoC designs
  4. Proficiency in C++ and Python for developing simulation models, automation frameworks, and performance analysis tools
  5. Experience with performance analysis of data center, AI accelerator, or high-performance computing workloads on custom silicon
  6. Experience defining architecture and microarchitectural specifications and driving cross-functional alignment across architecture, RTL, and physical design teams

Preferred Qualifications:

Preferred Qualifications:

  1. Familiarity with post-silicon performance validation and model-to-hardware correlation methodologies
  2. Programming in C or C++ with knowledge of mapping hardware algorithms to efficient C/C++ code
  3. Domain knowledge in one or more of power/performance tradeoffs, ML networks, ML frameworks such as Pytorch
  4. Experience building or scaling performance modeling infrastructure for hyperscale data center ASICs, including network, storage, or AI inference accelerator designs

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