Senior/Staff Design for Test Engineer

Reposted 5 Days Ago
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2 Locations
In-Office
Senior level
Artificial Intelligence • Semiconductor • Manufacturing
The Role
The role involves designing, implementing, and verifying DFT strategies for digital pipelines, collaborating across teams, and mentoring junior engineers.
Summary Generated by Built In

About OLIX

AI is growing faster than any technology in history and the explosion in demand has created a massive infrastructure gap; we can no longer build chips or power stations fast enough to keep up. The industry is still leaning on a ten-year-old hardware blueprint that has reached its limit. A new paradigm that is faster and more efficient will be the biggest economic opportunity of the next century and create the most important company of the next decade. The OLIX Decode Accelerator 1 (DX-1) is the first accelerator architected specifically for decode. Rack-scale co-design of logic, data movement, packaging, optics and interconnect enables a step change in system level performance.

 
The Role

We are seeking highly skilled and motivated Senior/Staff DFT (Design for Test) Engineers with a strong focus on high-performance digital design to take end-to-end ownership of robust, testable silicon, from early test strategy definition to verified DFT implementation, pattern generation, and silicon bring-up. You will join a multidisciplinary group creating next-generation accelerators where digital, optical, and mixed-signal domains intersect. The ideal candidate will have extensive experience in the DFT of large-scale, high-volume ASICs and a passion for developing reliable, high-coverage test architectures that drive breakthrough AI hardware


Responsibilities
  • Architect, own, and implement the comprehensive Design-for-Test (DFT) strategy for complex high-throughput digital pipelines in advanced CMOS nodes, ensuring high test coverage and efficient test execution.

  • Lead the integration and verification of all DFT features, including Scan, JTAG, Boundary Scan, and Memory BIST, ensuring adherence to industrial standards and sign-off criteria.

  • Partner with the test engineering team to develop, validate, and optimize ATE-compatible test patterns (stuck-at, transition, bridging, etc.) to achieve aggressive fault coverage and maximise manufacturing yield.

  • Drive RTL development (SystemVerilog / Verilog / VHDL) with a focus on DFT architecture, including synthesis constraints for test structures, and collaborate on formal and constrained-random verification of DFT logic.

  • Analyse and minimise the DFT impact on power, performance, and area (PPA), implementing innovative techniques for efficient test access and execution.

  • Collaborate with mixed-signal and software teams to define and optimise DFT interfaces, test modes, and firmware abstractions for test control and diagnosis.

  • Mentor junior engineers, lead DFT design reviews, and champion best-practice methodologies for testability and debug across the ASIC development lifecycle.


Skills & Experience
  • 7+ years of hands‑on DFT architecture, implementation, and verification for high‑performance ASICs or SoCs, including ownership of at least one product with comprehensive DFT coverage.

  • Proven success implementing and verifying advanced DFT features (e.g., Scan/ATPG, Boundary Scan, Memory BIST/Repair) on multi‑hundred‑MHz to multi‑GHz clock domains.

  • Expertise with industry‑standard EDA flows: Scan insertion, ATPG, pattern simulation (gate-level), fault modeling, and diagnosis tools.

  • Demonstrated proficiency with DFT flows: compression techniques, EDT, JTAG/IEEE 1149.1/1687, and managing large pattern sets.

  • Proficiency using Python/Tcl scripting for DFT flow automation, pattern generation/management, and silicon debug/bring-up.

  • Solid grounding in semiconductor device physics, fault models (stuck-at, transition, bridging), and yield enhancement strategies.

  • Excellent communication and cross‑functional collaboration abilities; thrives in a fast‑moving, ambiguous environment.


Nice to have
  • Tape‑out experience at 22 nm or below.

  • Knowledge of high-speed SerDes or HBM/DDR DFT challenges.

  • Familiarity with AI/ML workloads or systolic arrays and their implications for DFT.

  • Contributions to open‑source DFT tools or verification frameworks.


Compensation & Equity
  • Competitive Salary: Commensurate with your experience, skills, and location

  • Equity & Ownership: Meaningful stock options. You’re not just joining the mission; you’re owning a piece of it

  • Proximity Bonus: We value your time. To minimise your commute and maximise your life, we offer an annual Living-Local Bonus if your residence is within 20 minutes of the office

  • Retirement Benefits: Employer-contributed retirement plans to help you build long-term financial security.

Due to U.S. export control regulations, candidates’ eligibility to work at OLIX depends on their most recent citizenship or permanent residency status. We are generally unable to consider applicants whose most recent citizenship or permanent residence is in certain restricted countries (currently including Iran, North Korea, Syria, Cuba, Russia, Belarus, China, Hong Kong, Macau, and Venezuela). Applicants who have subsequently obtained citizenship or permanent residency in another country not subject to these restrictions may still be eligible.

 

Skills Required

  • 7+ years of hands-on DFT architecture, implementation, and verification for high-performance ASICs or SoCs
  • Proven success implementing and verifying advanced DFT features
  • Expertise with industry-standard EDA flows: Scan insertion, ATPG, pattern simulation
  • Proficiency using Python/Tcl scripting for DFT flow automation
  • Excellent communication and cross-functional collaboration abilities
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The Company
HQ: Durban
82 Employees
Year Founded: 2024

What We Do

The latest generation of AI models achieve breakthrough performance by using vastly more tokens to solve complex problems. As frontier models become more sophisticated, demand is compounding faster than today’s infrastructure can scale. Even the most dominant players, with full-stack control across silicon, software, and supply chains, are unable to solve this within the existing architecture. Inherent constraints in physical design and packaging mean a GPU-based approach is incapable of simultaneously delivering high throughput and high interactivity at low cost. Continuing AI’s advance and making it available to everyone requires a new compute paradigm. One that can overcome the fundamental limits of memory, energy, and speed that define today’s systems. If you like working on difficult and consequential problems, we want you at OLIX. We have offices in London, Austin, Toronto, San Francisco and Bristol. Check out our careers page at olix.com/careers

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