Software Engineer- Inference Performance

Baseten

Montreal (administrative region)

On-site

CAD 256,000 - 512,000

Full time

30 hours ago
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Benefits offered by this job

Competitive compensation
Equity
Winter Break (office closure)
Paid parental leave
Fertility and family-building stipend
401(k)

Job summary

Baseten is seeking an inference performance engineer to accelerate the world's most demanding AI workloads. You will work across the stack—from the inference engine to scheduling, serving, and routing—applying techniques like prefill/decode disaggregation and speculative decoding.

Your work will directly impact model latency and cost, in a fast-moving startup environment focused on shipping AI products. The role requires deep GPU knowledge, proficiency in Python/C++, and a strong track record

Qualifications

  • Bachelor's, Master's, or Ph.D. degree in Computer Science, Engineering, Mathematics, or related field.
  • Experience with one or more general-purpose programming languages, such as Python or C++.
  • Familiarity with LLM optimization techniques (e.g., quantization, speculative decoding, continuous batching).
  • Strong familiarity with ML libraries, especially PyTorch, TensorRT, or TensorRT-LLM.
  • Demonstrated interest and experience in LLMs.
  • Deep understanding of GPU architecture.

Responsibilities

  • Implement and productionize cutting-edge inference techniques, working deep in runtime internals. That includes quantization, speculative decoding, KV-cache reuse, chunked prefill, LoRA, guided generation for structured outputs, and custom scheduling and routing algorithms.
  • Profile and optimize inference end to end, from kernel launch overhead and memory layout up to request scheduling, prefill/decode disaggregation, and cache-aware routing. Run cross-layer investigations, such as tracing a tail-latency regression from request timing through routing and batching down to a kernel.
  • Turn performance into cost savings. Improve tokens per GPU-hour, raise utilization, and give customers and internal teams clear latency/throughput/cost tradeoffs.
  • Bring up and tune new model architectures on new hardware quickly, often in the same week they're released.
  • Build benchmarking frameworks that measure real-world performance across model architectures, batch sizes, sequence lengths, and hardware configurations.
  • Contribute upstream to open-source inference engines (vLLM, SGLang, TensorRT-LLM), and partner closely with model, infrastructure, and customer-facing teams to ship wins.

Skills

Python
C++
LLM optimization
PyTorch
TensorRT

Education

Bachelor's, Master's, or Ph.D. in CS/Engineering/Math

Tools

vLLM
TensorRT
CUDA
Triton

Job description

About Baseten

Baseten powers mission-critical inference for the world's most dynamic AI companies, like Cursor, Notion, OpenEvidence, Abridge, Clay, Gamma, and Writer. By uniting applied AI research, flexible infrastructure, and seamless developer tooling, we enable companies operating at the frontier of AI to bring cutting-edge models into production. We're growing quickly and recently raised our $1.5B Series F, led by Altimeter Capital, Conviction Partners, and Spark Capital. Join us and help build the platform engineers turn to ship AI products.

About Baseten

Baseten powers mission-critical inference for the world's most dynamic AI companies, like Cursor, Notion, OpenEvidence, Abridge, Clay, Gamma, and Writer. By uniting applied AI research, flexible infrastructure, and seamless developer tooling, we enable companies operating at the frontier of AI to bring cutting-edge models into production. We're growing quickly and recently raised our $1.5B Series F, led by Altimeter Capital, Conviction Partners, and Spark Capital. Join us and help build the platform engineers turn to ship AI products.

THE ROLE

We're looking for inference performance engineers who want to make the world's most demanding AI workloads run faster and more efficiently. You'll work across the stack, from the inference engine and runtime through scheduling, serving, and routing. Along the way you'll apply techniques like prefill/decode disaggregation, speculative decoding, and KV-cache management. You'll reason from first principles about where time and memory go, find what's holding performance back, and close the gap. Your work directly impacts how fast our customers' models run and how efficiently we serve them. This role is ideal for someone who thrives in a fast-paced startup environment and is eager to make significant contributions to the exciting field of LLM inference.

EXAMPLE INITIATIVES
  • Agentic Kernels in Production
  • How we built the new fastest API for GLM-5.2
  • Live draft model training for speculative decoding
  • Making Kimi K3 Tokenization 18x faster
  • The Baseten Inference Stack
  • Driving model performance optimization
Responsibilities
  • Implement and productionize cutting-edge inference techniques, working deep in runtime internals. That includes quantization, speculative decoding, KV-cache reuse, chunked prefill, LoRA, guided generation for structured outputs, and custom scheduling and routing algorithms.
  • Profile and optimize inference end to end, from kernel launch overhead and memory layout up to request scheduling, prefill/decode disaggregation, and cache-aware routing. Run cross-layer investigations, such as tracing a tail-latency regression from request timing through routing and batching down to a kernel.
  • Turn performance into cost savings. Improve tokens per GPU-hour, raise utilization, and give customers and internal teams clear latency/throughput/cost tradeoffs.
  • Bring up and tune new model architectures on new hardware quickly, often in the same week they're released.
  • Build benchmarking frameworks that measure real-world performance across model architectures, batch sizes, sequence lengths, and hardware configurations.
  • Contribute upstream to open-source inference engines (vLLM, SGLang, TensorRT-LLM), and partner closely with model, infrastructure, and customer-facing teams to ship wins.
Requirements
  • Bachelor's, Master's, or Ph.D. degree in Computer Science, Engineering, Mathematics, or related field.
  • Experience with one or more general-purpose programming languages, such as Python or C++.
  • Familiarity with LLM optimization techniques (e.g., quantization, speculative decoding, continuous batching).
  • Strong familiarity with ML libraries, especially PyTorch, TensorRT, or TensorRT-LLM.
  • Demonstrated interest and experience in LLMs.
  • Deep understanding of GPU architecture.
NICE TO HAVE
  • Proficiency in enhancing the performance of software systems, particularly in the context of large language models (LLMs)
  • Contributed to vLLM, SGLang, TensorRT-LLM, or another inference engine.
  • Worked on large-scale distributed serving: autoscaling, load balancing, multi-region or multi-cloud capacity.
  • Written or optimized GPU kernels (CUDA, Triton, CUTLASS, or similar)
  • Worked on quantization (FP8/FP4, AWQ, GPTQ) or speculative decoding in production.
  • Deep understanding of software engineering principles and a proven track record of developing and deploying AI/ML inference solutions.
Benefits
  • Competitive compensation, including meaningful equity
  • (U.S. only) 100% coverage of medical, dental, and vision insurance for employee and dependents
  • Flexible PTO policy including company wide Winter Break (our offices are closed from Christmas Eve to New Year's Day!)
  • Paid parental leave
  • Fertility and family-building stipend through Carrot
  • (U.S. only) Company-facilitated 401(k)
  • Exposure to a variety of ML startups, offering unparalleled learning and networking opportunities.

At Baseten, we are committed to fostering a diverse and inclusive workplace. We provide equal employment opportunities to all employees and applicants without regard to race, color, religion, gender, sexual orientation, gender identity or expression, national origin, age, genetic information, disability, or veteran status.

We are an Equal Opportunity Employer and will consider qualified applicants with criminal histories in a manner consistent with applicable law (by example, the requirements of the San Francisco Fair Chance Ordinance, where applicable).

Compensation Range: $180K - $360K

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