Staff Software Engineer, ML Performance & Systems

fal

$180K — $250K *
Consumer Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • Expertise in systems programming with a focus on performance optimization.
  • Solid understanding of advanced ML infrastructure stacks including PyTorch and TensorRT.
  • Knowledge of Nvidia hardware systems and ability to troubleshoot low-level performance issues.
  • Experience or willingness to learn Triton and its application in real-world scenarios.
  • Familiarity with multi-dimensional model parallelism techniques.
  • Understanding of Ring Attention and advanced neural network implementations.

Responsibilities

  • Maintain fal's leadership in generative model performance.
  • Design and enhance model serving architecture leveraging in-house technologies.
  • Create tools for monitoring and profiling model performance.
  • Collaborate with Applied ML teams and clients to ensure optimal workload execution.
  • Identify and resolve performance bottlenecks for media workloads.

Benefits

  • Engaging and challenging work environment.
  • Opportunities for professional growth and continuous learning.
  • Visa sponsorship and relocation assistance to San Francisco.
  • Comprehensive healthcare coverage including dental and vision.
  • Regular team-building events and offsite gatherings.
Full Job Description
Help fal maintain its frontier position on model performance for generative media models. Design and implement novel approaches to model serving architecture on top of our in-house inference engine, focusing on maximizing throughput while minimizing latency and resource usage. Develop performance monitoring and profiling tools to identify bottlenecks and optimization opportunities. Work closely with our Applied ML team and customers (frontier labs on the media space) and make sure their workloads benefit from our accelerator.

Key Responsibilities:
  • Help fal maintain its frontier position on model performance for generative media models.
  • Design and implement novel approaches to model serving architecture on top of our in-house inference engine, focusing on maximizing throughput while minimizing latency and resource usage.
  • Develop performance monitoring and profiling tools to identify bottlenecks and optimization opportunities.
  • Work closely with our Applied ML team and customers (frontier labs on the media space) and make sure their workloads benefit from our accelerator.

Requirements:
  • Strong foundation in systems programming with expertise in identifying and fixing bottlenecks.
  • Deep understanding of cutting edge ML infrastructure stack (anything from PyTorch, TensorRT, TransformerEngine to Nsight), including model compilation, quantization, and serving architectures. Ideally following closely the developments in all these systems as they happen.
  • Have a fundamental view of the underlying hardware (Nvidia based systems at the moment), and when necessary go deeper into the stack to fix bottlenecks (custom GEMM kernels with CUTLASS for common shapes).
  • Proficient in Triton or willingness to learn with comparable experience in lower-level accelerator programming.
  • New frontier: multi-dimensional model parallelism (combining multiple parallelism techniques like TP with context parallel / sequence parallel).
  • Familiar with internals of Ring Attention, FA3, FusedMLP implementations.
What we offer at fal:
  • Interesting and challenging work
  • Competitive salary and equity
  • A lot of learning and growth opportunities
  • We offer visa sponsorship and will help you relocate to San Francisco.
  • Health, dental, and vision insurance (US)
  • Regular team events and offsite
Compensation:
  • $180,000 - $250,000 + equity + comprehensive benefits package
Location:
  • We are currently hiring in downtown San Francisco.

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