Senior Software Engineer - Backend Performance -MarTech/AdTech

Three Pillars

  • San Francisco, California
  • 6 days ago

    Highlights

    This is engineers-first, systems-heavy work: high-throughput pipeline execution and Reactor self-correction over large volumes of structured and unstructured data, made fast. Apply GPU acceleration (CUDA) to pipeline execution and Reactor self-correction where it delivers real speedups — and know when it doesn't.

    Numbers & Facts

    LocationSan Francisco, California

    Description

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    Senior Software Engineer — Backend Performance


    As a Senior Software Engineer on Backend Performance, you own the hottest paths in data products — the code that has to be fast because everything downstream depends on it. You profile before you guess, drop into C/C++, Cython, or Rust when Python runs out of room, and reach for the GPU when it earns its keep. This is engineers-first, systems-heavy work: high-throughput pipeline execution and Reactor self-correction over large volumes of structured and unstructured data, made fast.


    What You'll Do:

    • Profile, benchmark, and eliminate bottlenecks across the pipeline's performance-critical paths.
    • Write performance-critical code in C/C++, Cython, and/or Rust for the hot paths where interpreted Python won't hold.
    • Apply GPU acceleration (CUDA) to pipeline execution and Reactor self-correction where it delivers real speedups — and know when it doesn't.
    • Engineer for parallelism and concurrency: threading, vectorization, memory layout, and data-movement costs.
    • Build performance-regression detection into CI so hard-won gains don't quietly erode.
    • Partner with the Data Products and infrastructure teams to move the right work to the right primitive.


    What Will Help You Succeed:

    Core engineering

    • Strong systems engineering background with deep proficiency in at least one of C, C++, or Rust. Cython and CUDA are a strong plus.
    • Fluent in Python for data processing, with a real feel for where the interpreter costs you and how to escape it.
    • Performance engineering: profiling, memory management, concurrency, cache behavior, and reasoning quantitatively about throughput and latency.


    Systems & data

    • Parallel, high-throughput processing — SIMD / vectorization, multiprocessing, or GPU parallelism.
    • Experience moving and transforming large volumes of structured and unstructured data with low latency.
    • PostgreSQL and strong data-structures and algorithms fundamentals.


    Nice to have

    • CUDA / kernel-level optimization or hardware-aware performance work; NVIDIA ecosystem depth.
    • Lakehouse internals, columnar formats (Arrow / Parquet), or numeric/array computing.


    The role is right for you if:

    • You reach for a profiler before another machine, and you can explain exactly where your time is going.
    • You write the systems code yourself. AI assistants speed you up; they don't do the engineering for you.

     

     

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