Software Engineer, Inference Platform

Cerebras Systems

$130K — $180K *
Information Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • 3+ years of software engineering experience particularly with distributed systems or cloud infrastructure.
  • Familiarity with Kubernetes for managing cloud resources.
  • Track record of building highly reliable, low-latency systems at scale.
  • Knowledge of security protocols including certificates, TLS, and mTLS.
  • Experience in optimizing for latency and efficiency in high-query-per-second environments.
  • Proficient in backend languages like Go or C++.
  • Exposure to ML inference infrastructures and GPU workloads is advantageous.

Responsibilities

  • Shape the technical roadmap and evolution of the Inference Platform.
  • Architect systems for reliability and performance with clear service-level objectives.
  • Write and review critical production code for platform integrity.
  • Lead resolution of production issues and enhance operational responses.
  • Collaborate across teams to align product requirements with scalable designs.

Benefits

  • Flexibility in work arrangements, promoting work-life balance.
  • Senior influence in technical decisions affecting major platform components.
  • Opportunities for hands-on leadership in critical engineering challenges.
  • Engagement with cutting-edge technology in ML and distributed systems.
Full Job Description
Location: Sunnyvale

We're hiring a Software Engineer to help contribute to projects on our Inference Platform team. Our team primarily owns the orchestration layer that runs inference on our datacenter clusters which glues together the cloud components to the ML components. We are often the first team to face issues that haven't been solved yet so we get to lead the company on a wide variety of solutions, from k8s operators to security policies of services and CI/CD.

This is a hands-on role for an engineer who will split their time between design and coding and should be experienced in all facets of development including; testing, continuous development, observability, security, networking, debugging, productionization.

If you're interested in building our next-generation architecture of a globally distributed inference platform, we'd like to talk.

Responsibilities
  • Platform Direction. Help shape the technical direction for the Inference Platform, k8s custom resource definitions, failure domains, service boundaries, and system evolution over time, and own the roadmap for major technical areas.
  • Reliability & Performance. Architect active-active systems with rapid failover, graceful degradation, and clear SLOs. Drive system-level improvements in latency, throughput, capacity efficiency, and resilience under unpredictable demand.
  • Execution on Critical Paths. Write and review production code in the most important parts of the platform. Make high-consequence architectural decisions within your area and set the technical bar through design reviews, code reviews, and sound engineering judgment.
  • Production Leadership. Lead on the hardest production issues and cross-system bottlenecks. Drive observability, incident response, capacity planning, and post-incident improvement with a high standard for operational rigor.
  • Technical Influence. Partner with ML, Product, Infrastructure, and Cloud teams to translate product and business requirements into scalable system designs, and drive alignment on shared technical decisions within your domain and adjacent platform surfaces.

Skills & Qualifications
  • 3+ years of experience in software engineering, with experience building and operating large-scale distributed systems or cloud infrastructure.
  • Experience in distributed systems ideally with Kubernetes.
  • Experience building highly available, latency-sensitive systems at scale.
  • Experience with security (certificates, TLS, mTLS)
  • Experience optimizing latency, throughput, and efficiency in high-QPS systems. Experience with TTFT and tail-latency reduction is a strong plus.
  • Strong proficiency in backend or systems languages such as Go, C++.
  • Experience with ML inference infrastructure, model serving systems, or GPU-accelerated workloads is a plus.

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