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更新于 4月25日

Section Lead, MB.OS ADAS Enabler

面議
  • 北京朝陽區(qū)
  • 5-10年
  • 碩士
  • 全職
  • 招1人

職位描述

無人駕駛ADAS算法云原生架構(gòu)CI/CD
Key Responsibilities - Responsible for architecture design and optimization of intelligent driving core algorithms (perception, prediction, planning, control and other modules). - Lead the design and implementation of multi-sensor fusion (Camera, LiDAR, Radar) algorithms to solve key technical problems such as target detection, tracking, and scene understanding. - Develop high-precision positioning (SLAM), behavior prediction, path planning and motion control algorithms to adapt to L3/L4 autonomous driving requirements. - Deploy algorithm models to vehicle embedded platforms to optimize real-time performance and resource usage. - Build a simulation test framework (based on CARLA, etc.), design a scenario library and verify algorithm performance, and support the reproduction and tuning of real-car road test problems. - Break through the algorithm bottleneck in long-tail scenarios (such as bad weather, unprotected left turns, and dense pedestrian interactions) and propose innovative solutions. - Research end-to-end autonomous driving technology and the application of Transformer large models in perception and decision-making. - Design, build, and maintain the foundational autonomous driving development platform, including Kubernetes cluster deployment and operations. - Orchestrate cloud-native services using Infrastructure-as-Code tools such as Pulumi and Helm to ensure environment consistency and reusability. - Lead the deployment, customization, and operation of workflow engines such as Flyte,nabling large-scale distributed training and simulatioPlatform & Infrastructure - Design, build, and maintain the foundational autonomous driving development platform, including Kubernetes cluster deployment and operations. - Orchestrate cloud-native services using Infrastructure-as-Code tools such as Pulumi and Helm to ensure environment consistency and reusability. - Lead the deployment, customization, and operation of workflow engines such as Flyte, n task management. - Build and optimize CI/CD pipelines with Argo CD and GitOps principles to achieve fully automated deployment and configuration management. - Promote the fusion of simulation and real-world data to enhance system-level closed-loop validation capabilities. - Build and manage a high-performance team, foster an agile engineering culture, and coordinate cross-functional collaboration across platform, algorithm, and test teams. - Closely collaborate with teams across automotive electronics architecture, perception systems, and system validation to ensure seamless R&D integration. - Take ownership of team development, including technical roadmap planning, personnel growth, and delivery quality control. Qualifications ?Education: Master degree or above in computer science, automation, vehicle engineering, robotics and other related majors. ?Work experience: -More than 5 years of experience in autonomous driving algorithm research and development, and has led the development of at least 1 mass production project module. Fully participate in the full cycle of L2+ to L4 projects, with patents or top conference papers (CVPR/ICRA/IROS, etc.). proven experience with end-to-end project delivery is preferred. -Proficient in cloud-native architecture and tools, including Kubernetes, Docker, and Istio. -Hands-on experience in deploying and optimizing workflow orchestration systems, such as Flyte. -Familiarity with at least one CI/CD toolchain (e.g., Argo CD, GitLab CI/CD). -Hands-on experience with autonomous driving simulation tools (e.g., CARLA, RoadRunner) and the ROS framework. -Solid understanding of ADAS algorithm validation workflows; experience in hybrid (real + virtual) testing architecture is a plus. -Familiarity with the application of deep learning models such as Transformers and Diffusion models in perception and reconstruction tasks is a strong plus. -Experience in building data feedback platforms or data-driven development pipelines is highly desirable. ?Language: Proficient in English, can read technical literature and participate in international technical exchanges. ?Bonus points - Familiar with the application of large models (such as BEV perception, DriveGPT) in autonomous driving; - Experience in transplanting algorithms for automotive-grade chips (Orin/Xavier, TI TDA4); - Participated in the construction of an autonomous driving data closed-loop system and is familiar with the entire process of data mining-labeling-training-deployment.

工作地點

北京市朝陽區(qū)望京街8號院利星行廣場

職位發(fā)布者

吳女士/HRM

立即溝通
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