Machine Learning Engineer

Altera Corporation

$200K — $290K *
Information Technology
8 - 10 years of experience
Job Overview by Ladders

Qualifications

  • Bachelor's Degree or higher in Computer Science, Electrical Engineering, or a related field.
  • 10+ years of experience in machine learning development, model optimization or ML systems engineering.
  • Proficient in C++ and Python in production or research contexts.
  • Familiarity with Agile methodologies and GitHub Copilot or similar AI coding assistants.
  • Understanding of edge AI inference on FPGAs and neuro-symbolic AI techniques.
  • Strong communication skills for cross-functional collaboration.

Responsibilities

  • Develop, optimize, and deploy advanced machine learning technologies to improve FPGA compiler performance.
  • Evaluate and integrate emerging ML models and frameworks for compiler optimization tasks.
  • Build robust tools, scripts, and CI/CD workflows to automate model operations within the FPGA design flow.
  • Collaborate with customers and internal teams to gather ML requirements and define success metrics.
  • Design and execute benchmarks to measure ML-optimized compiler performance across FPGA families.

Benefits

  • Working in a cutting-edge field at the intersection of machine learning and FPGA technology.
  • Opportunities for close collaboration across disciplines, enhancing work experience.
  • Access to a high-performance computing environment to push innovation further.
  • Involvement in defining metrics of success and delivering tailored solutions to customers.
Full Job Description
Job Details:

Job Description:

About the Role

We are seeking a Machine Learning Engineer to help drive the development, optimization and deployment of Altera FPGA Compiler. In this role, you will work at the intersection of machine learning and compiler/toolchain development, enabling customers to achieve breakthrough performance and efficiency on programmable logic.

You will collaborate closely with hardware architects, software engineers, and IP developers to design ML models, optimize inference pipelines, and contribute to the evolution of Altera's FPGA Compiler.

Key Responsibilities

  • Develop, optimize, and deploy advanced machine learning technologies to enhance FPGA compiler performance, focusing on timing closure, resource utilization, and power efficiency.


  • Evaluate and integrate emerging ML models (e.g., graph neural networks, reinforcement learning) and frameworks (e.g., PyTorch, TensorFlow) for compiler optimization tasks like placement, routing, and logic synthesis.


  • Build robust tools, scripts, and CI/CD workflows to automate model conversion, quantization, pruning, and deployment within the FPGA design flow, ensuring compatibility with EDA tools like Quartus.


  • Collaborate with customers, FPGA architects, and internal engineering teams to gather ML requirements, define success metrics, and deliver tailored, production-ready solutions.


  • Design and execute comprehensive benchmarks to measure ML-optimized compiler performance across diverse FPGA families (e.g., Agilex, Stratix), analyzing metrics such as compile time, QoR, and scalability.


Salary Range

The pay range below is for Bay Area California only. Actual salary may vary based on a number of factors including job location, job-related knowledge, skills, experiences, trainings, etc. We also offer incentive opportunities that reward employees based on individual and company performance.

$200.4K - $290.1K USD

We use artificial intelligence to screen, assess, or select applicants for the position. Applicants must be eligible for any required U.S. export authorizations.

Qualifications:

Minimum Qualifications

  • Bachelor's Degree or higher in Computer Science, Electrical Engineering, or a related field.


  • 10+ years of experience in machine learning development, model optimization or ML systems engineering.


  • Experience with C++ and Python in production or research environments.


Preferred Qualifications

  • Experience with Agile methodologies, GitHub Copilot or similar AI coding assistants, and high-performance computing environments.


  • Familiarity with edge AI inference on FPGAs and neuro-symbolic AI techniques.


  • Strong communication skills for cross-functional collaboration and presenting results at conferences like DAC or FPGA World.


Job Type:
Regular

Shift:
Shift 1 (United States of America)

Primary Location:
San Jose, California, United States

Additional Locations:

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