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英伟达Software Engineering Manager, Enterprise AI Software

社招全职地点:上海状态:招聘

任职要求


• BS, MS, or PhD in Computer Science, Electrical/Computer Engineering, Physics, Mathematics, other Engineering or related fields (or equivalent experience).
• 8+ overall years of software engineering experience with a focus on distributed systems, cloud infrastructure, or large-scale platform development.
• 3+ years of experience leading and managing high-performing engineering teams of software engineers and SRE engineers.
• Proven expertise with distributed computing technologies including Kubernetes, container orchestration, and experience with multi-cloud or hybrid-cloud environments.
• Strong understanding of microservices architecture** and experience building scalable, fault-tolerant distributed systems.
• Experience with factory automation and infrastructure-as-code principles, including Temporal and automated deployment pipelines.
• Excellent communication, leadership, and problem-solving skills with the ability to operate in a fast-paced, collaborative environment.
• Proven ability to work effectively in remote and cross-functional teams.

Ways to stand out from the crowd:
• Experience building platforms that support the full lifecycle of AI inference applications and microservices.
• Deep understanding of inference workloads and their unique infrastructure requirements for low-latency, high-throughput processing.
• Experience with NVIDIA hardware including GPUs, DPUs, and networking technologies for AI workloads.
• Background in AI/ML infrastructure and understanding of model serving, inference optimization, and GPU utilization.
• Experience in a large-scale, high-growth technology company with proven track record of delivering software products.

工作职责


• Lead and manage a high-performing team of software engineers and SRE engineers, guiding their professional growth and project execution while fostering a culture of innovation and excellence.
• Oversee factory automation initiatives that streamline the development, deployment, and management of inference microservices across distributed environments.
• Coordinate the development of infrastructure that ensures consistency, quality, and security for inference workload deployments at scale.
• Collaborate with cross-functional teams to integrate the infrastructure into CI/CD pipelines, enabling seamless and efficient microservices delivery.
• Build foundational distributed computing systems supporting the full lifecycle of inference microservices for NVIDIA's AI strategy.
• Establish and enforce standards for infrastructure and application deployment, eliminating manual, ad-hoc processes through automation.
• Work closely with security teams to ensure the platform's design and implementation are robust and secure, with a focus on authentication, authorization, and data protection.
• Drive recruitment and mentorship efforts to build and maintain a top-tier engineering team.
包括英文材料
Kubernetes+
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