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Senior Software Development Engineer in Test (SDET) - AI Cluster Networking and Security

cerebras · Remote
RemoteFull-timeSoftwareTechnology$136,000–$184,000/yr
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About the Senior Software Development Engineer Test AI role

Senior Software Development Engineer Test AI positions focus on delivering results in their domain. This page aggregates open Senior Software Development Engineer Test AI roles and what employers typically expect.

Cerebras Systems builds the world's largest AI chip, 56 times larger than GPUs. This architecture allows Cerebras to deliver industry-leading training and inference speeds; over 10 times faster than GPU-based hyperscale cloud inference services. This order of magnitude increase in speed is transforming the user experience of AI applications, unlocking real-time iteration and increasing intelligence via additional agentic computation. Cerebras works with the leading model labs, global enterprises, and cutting-edge AI-native startups. OpenAI recently announced a multi-year partnership https://openai.com/index/cerebras-partnership/ with Cerebras, to deploy 750 megawatts of scale, transforming key workloads with ultra high-speed inference. In AI infrastructure organization, simplifying large hardware deployments with push button, single pane of glass for observability/monitoring and software capabilities for build-in resiliency are some of the key focus areas. As senior software development engineer in Test, we are looking for a candidate who can make a big impact on how we test and validate thousands of nodes in large deployments to ensure the cluster is 99.999% reliable. Responsibities: - You will be hired to innovate and execute tests on cutting edge AI infrastructure. Be a thinker, define optimized test strategies and methodologies. - Cerebras is growing and innovating at a rapid pace and so is the ML community and AI models. Be a quick learner, adapt to new technologies, and bring your expertise. We are looking to hire a team with a diverse skill set. - Deep understanding of how large-scale distributed ML training and inference works. Build a strong understanding of how to break these large distributed systems challenge into smaller components that can be unit tested - Automate first approach - In large scale deployment, automation drives efficiency and scalability. Aim for 100% automated tests to test all cluster features in areas of high availability, failure scenarios, performance, stress and security - Champion cluster security, reliability for uptime of 99.9999% and ease of use with observability. - Test all components of AI cluster including but not limited to cluster software involving kubernetes, prometheus and grafana. Cluster hardware components like ML wafer scale accelerators, CPU runtime nodes, High speed swarmx interconnect, High speed data transfer of weights through memoryx interconnect - Qualify cluster networking solutions which consists of high-speed switches, routers and optics from various vendors - Qualify cluster security features including OS security, network security, cloud compliance user access and security certifications Qualifications: - Bachelor's or master's degree in engineering in computer science, electrical, AI, data science of related field - 10+ years of experience in testing one of areas like enterprise software, distributed systems, datacenter hardware and software - Experience working in large enterprise or cloud networking infrastructure, high speed switches, routers, firewalls - Experience in qualifying networking vendor platforms like Juniper, Arista or Cisco and network test equipment like Ixia/Spirent - Experience in Datacenter technology like BGP, ECN, PFC - Experience testing networking security, compliance and firewalls - Strong coding skills in one of the programming languages like python, golang or C/C++ - Strong debugging skills to debug issues in large distributed systems, hardware, and software. Experience with debugging tools like gdb, strace, networking monitors - Strong understanding of operating systems internals like memory management, file system working, security basics and performance - Strong understanding of datacenter layout, device performance characteristics like PCIe, networking and storage - Experience with cloud technologies like AWS, kubernetes and dockers. Monitoring tools like grafana, prometheus is huge plus - Understanding and experience of ML model t…

Salary estimate

$136,000 – $184,000/yr
Provided by the employer.

Skills for this role

PythonC++GolangAWSKubernetesData ScienceSecurityAutomation

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About cerebras

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