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  3. CUDA Developer

CUDA Developer

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Brightvision logo

CUDA Developer

Brightvision

100,000–150,000 / Year

Location

Remote

Experience

Senior

Posted

Jul 22, 2026

Apply by

August 21, 2026

Applicants

0

Early applicantEasy applyFull-timeWork from Home

Sign in to apply on web or download the app for more options.

Job Description

CUDA Developer – Remote Bright Vision Technologies is a technology consulting and software development company delivering cloud, AI, data, and enterprise solutions across the United States. This is a fantastic opportunity to join an established and well-respected organization offering tremendous career growth potential. Job Title: CUDA Developer Location: 100% Remote (U.S.) Position Type: Full-time, Direct W2 Salary Range: $100,000–$150,000 Annually Experience Required: 6+ years Sponsorship: U.S. Citizens, Green Card Holders, EAD Holders, and H-1B transfer candidates are encouraged to apply. We are unable to sponsor new H-1B visa petitions for this position. Job Summary We are seeking a CUDA Developer with deep expertise in CUDA programming, GPU architecture, and high-performance computing to design and optimize compute-intensive workloads on modern accelerator hardware. This role focuses on extracting maximum performance from GPU platforms for AI training, inference, scientific computing, and high-throughput data processing workloads. The ideal candidate combines low-level systems mastery with strong software engineering practices, and has a track record of delivering measurable performance improvements on production GPU systems. In this role you will work closely with cross-functional partners — product, design, engineering, operations, and business stakeholders — to translate ambiguous requirements into well-engineered solutions, and will be expected to raise the bar through code review, design review, and mentorship of more junior engineers. The successful candidate brings strong engineering discipline, a clear communication style, and a track record of shipping meaningful work that holds up well in production. Key Responsibilities - Design and implement high-performance CUDA kernels for compute-intensive workloads across AI and HPC use cases. - Profile and optimize GPU code using tools such as Nsight Systems, Nsight Compute, and CUDA profilers. - Tune memory access patterns, occupancy, register usage, and shared memory utilization for peak performance. - Develop highly optimized libraries for linear algebra, attention, and other ML primitives. - Optimize multi-GPU and multi-node training using NCCL, RDMA, and high-performance networking. - Implement custom operators and fused kernels in PyTorch, JAX, or Triton. - Collaborate with ML engineers to identify performance bottlenecks in training and inference pipelines. - Develop benchmarks and regression tests to safeguard performance over time. - Evaluate new GPU architectures and feature sets, and advise on adoption strategy. - Contribute to compiler-level optimizations for tensor programs where appropriate, working at the boundary between ML frameworks and underlying accelerator codegen to unlock performance not reachable through framework-level tuning alone. - Optimize memory hierarchy usage across HBM, L2, shared memory, and registers. - Implement mixed-precision and quantized compute paths that maximize accelerator throughput while preserving numerical fidelity within bounds acceptable for the target workloads. - Document performance characteristics, design decisions, and tuning playbooks for internal teams. - Stay current with GPU architecture, CUDA evolution, and emerging accelerator technologies. Required Qualifications - Bachelor’s or Master’s degree in Computer Science, Computer Engineering, or a related field. - Six or more years of experience in GPU programming and performance engineering. - Deep expertise in CUDA C/C++ and GPU programming models. - Strong understanding of modern GPU architectures, memory hierarchies, and execution models. - Hands-on experience profiling and optimizing GPU workloads in production. - Familiarity with NCCL, MPI, and high-performance interconnect technologies. - Experience integrating custom kernels into ML frameworks. - Strong C++ skills and familiarity with modern systems programming practices. - Solid grounding in linear algebra and numerical methods. - Strong communication and collaboration skills with research and engineering teams. Preferred Qualifications - Experience with Triton, CUTLASS, or other GPU kernel authoring frameworks. - Familiarity with TensorRT, FasterTransformer, or vLLM internals. - Exposure to compiler infrastructure such as LLVM or MLIR. - Open-source contributions to GPU or ML performance libraries. - Experience with large-scale distributed training infrastructure. How to Apply Would you like to know more about this opportunity? For immediate consideration, please send your resume to [\[email protected\]](/cdn-cgi/l/email-protection). Learn more about Bright Vision Technologies at www.bvteck.com. Bright Vision Technologies is an Equal Opportunity Employer. Equal Employment Opportunity (EEO) Statement Bright Vision Technologies (BV Teck) is committed to equal employment opportunity (EEO) for all employees and applicants without regard to race, color, religion, sex, sexual orientation, gender identity or expression, national origin, age, genetic information, disability, veteran status, or any other protected status as defined by applicable federal, state, or local laws. This commitment extends to all aspects of employment, including recruitment, hiring, training, compensation, promotion, transfer, leaves of absence, termination, layoffs, and recall. BV Teck expressly prohibits any form of workplace harassment or discrimination. Any improper interference with employees' ability to perform their job duties may result in disciplinary action up to and including termination of employment.

Key Responsibilities

  • Design and implement high-performance CUDA kernels for AI and HPC workloads.
  • Profile and optimize GPU code using Nsight Systems, Nsight Compute, and CUDA profilers.
  • Tune memory access patterns, occupancy, register usage, and shared memory utilization.
  • Develop optimized libraries for linear algebra, attention, and ML primitives.
  • Optimize multi-GPU and multi-node training using NCCL, RDMA, and high-performance networking.
  • Implement custom operators and fused kernels in PyTorch, JAX, or Triton.
  • Collaborate with ML engineers to identify performance bottlenecks in training and inference pipelines.
  • Develop benchmarks and regression tests to safeguard performance.
  • Evaluate new GPU architectures and advise on adoption strategy.
  • Contribute to compiler-level optimizations for tensor programs.
  • Optimize memory hierarchy usage across HBM, L2, shared memory, and registers.
  • Implement mixed-precision and quantized compute paths.
  • Document performance characteristics and tuning playbooks.

Requirements

  • Bachelor's or Master's degree in Computer Science
  • Computer Engineering
  • or a related field

Skills Required

CUDAC++GPU ProgrammingNsight SystemsNsight ComputeCUDA ProfilersNCCLMPIHigh-Performance NetworkingLinear AlgebraNumerical MethodsPyTorchJAXTritonCommunicationCollaborationEngineering disciplineMentorshipCUTLASSTensorRTFasterTransformervLLMLLVMMLIROpen-source contributionsDistributed training infrastructure

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Job Overview

Salary

100,000–150,000 / Year

Currency: USD

Job Type

Full-time

Experience

Senior

Location

Remote

Application Deadline

August 21, 2026

Total Applicants

0

About Brightvision

Brightvision logo

Brightvision is a leading company in the Technology sector, known for innovation and employee-centric culture.

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