DPU Performance Architect, Infrastructure Silicon

Meta

• $160K — $200K *
Telecommunications & Hardware
8 - 10 years of experience
Job Overview by Ladders

Qualifications

  • Bachelor's degree in Computer Science, Computer Engineering, or related field; equivalent experience accepted
  • 8+ years in performance analysis and modeling, particularly in networking and storage
  • Deep understanding of DPU architectures and relevant protocols like RoCE and NVMe
  • Proficient in model development languages such as Python, C/C++, and SystemC
  • Experience with data center workloads and benchmarking methodologies
  • Skilled in RTL performance validation and correlating pre-silicon and post-silicon data
  • Ability to independently drive analysis and influence architectural decisions

Responsibilities

  • Analyze performance of SmartNIC/IPU/DPU architectures focusing on transaction flows and offloading options
  • Quantify architectural trade-offs regarding power, performance, and area (PPA)
  • Characterize DPU workloads to inform performance models and benchmarks
  • Develop performance models and simulation tools for future DPU architectures
  • Drive RTL performance validation with comprehensive test plans and coverage criteria
  • Correlate pre-silicon performance projections with post-silicon measurements
  • Enhance methodologies based on performance validation findings

Benefits

  • Comprehensive health insurance options
  • Retirement savings plans with company matching
  • Generous paid time off and holiday schedule
  • Opportunities for professional development and training
  • Flexible work arrangements and remote work options
Full Job Description
Meta's Infrastructure Silicon organization designs custom silicon that powers our data center infrastructure - SmartNICs/IPUs/DPUs, AI accelerators, and networking ASICs. We are seeking an experienced Performance Architect to drive performance modeling, analysis, and validation of our Data Processing Unit (DPU) architectures. In this role you will influence architecture and microarchitecture decisions from early path-finding through RTL validation and silicon correlation.

Responsibilities

Analyze performance of current and future SmartNIC/IPU/DPU architectures with focus on end-to-end transaction flows, host-to-DPU offloading options, evaluation of SoC architectural options
• Quantify architectural/micro-architectural trade-offs wrt PPA to inform and guide design decisions
• Analyze and characterize DPU workloads to abstract key performance-relevant behaviors and incorporate into representative models and synthetic benchmarks
• Develop and enhance performance models, simulation tools, and methodologies to evaluate future DPU architectures
• Drive RTL performance validation, including development of comprehensive performance test plans, coverage criteria, and correlation of RTL results against architectural models
• Correlate pre-silicon performance projections with post-silicon measurements and drive methodology improvements based on findings

Minimum Qualifications
• Bachelor's degree in Computer Science, Computer Engineering, relevant technical field, or equivalent practical experience
• 8+ years of relevant industry experience in developing analytical/tool based models and performance analysis with focus on networking and storage architectures
• Detailed understanding of DPU architectures: network virtualization, storage disaggregation, networking and storage protocols such as RoCE, NVMe, fabric architectures
• Experience in workload analysis and characterization, and abstracting key performance features into models for analysis
• Proficiency in languages for model development (e.g. Python, C/C++, SystemC)
• Experience with data center workloads and benchmarking methodologies
• Experience with RTL performance validation, including authoring and executing performance test plans and correlating pre-silicon performance models with post-silicon measurements
• Experience driving analysis independently and influencing architectural direction through data

Preferred Qualifications
• PhD in Computer Science, Computer Engineering or Electrical Engineering
• 15+ years of relevant industry experience in developing analytical/tool based models and performance analysis with focus on networking and storage architectures
• Experience with hardware description languages (e.g., SystemVerilog, VHDL) and simulation environments used in ASIC development flows
• Experience building or scaling performance modeling infrastructure for hyperscale data center ASICs, including network, storage, or AI inference accelerator designs
• Experience with post-silicon performance validation and model-to-hardware correlation methodologies
• Experience developing Python-based automation pipelines for simulation orchestration, regression testing, and performance data analysis
• Experience with GPU, machine learning, multi-threaded programming paradigm
• Experience with high-level synthesis, power-performance-area trade-off analysis, or PPA-driven microarchitectural optimization

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