[채용] 포티투닷(42dot) - ML Platform Engineer - 포티투닷(42dot) | 데모데이
포티투닷(42dot) - ML Platform Engineer
포티투닷(42dot)·경기 성남시 수정구 창업로40번길 20, A동 42dot·정규직·경력 5년 이상
🔥합격보상지원자, 추천인 각 현금 50만원
회사명
포티투닷(42dot)
포지션
ML Platform Engineer
근무지
경기 성남시 수정구 창업로40번길 20, A동 42dot
고용형태
정규직
경력
5년 이상
회사 소개
[We are looking for the best] At 42dot, our AD ML Platform Engineers build the core data platform and ML training / eval platform for the cutting edge algorithms in autonomous driving. We develop the distributed system of a scalable data platform for large-scale dataset (millions of scenes), as well as high-performance data serving SDKs for ML model training / evaluation. The platforms we deliver could highly improve the efficiency of ML model development lifecycle, including training, evaluation, deployment, as well as monitoring in the cloud environment.
주요 업무
Develop a high scale, reliable data platform to manage, visualize, search and serve large-scale datasets for ML model training, fine tune and validation.
Develop advanced autonomous driving data SDK, including scene data search, datasets preparation, dataset loading, etc.
Build up the data lakehouse for autonomous driving scene dataset, including the sensor data, calibration data, as well as annotation data
Dig into performance bottlenecks all along the data processing pipelines, from data processing latency, data search latency to Test Procedure (TP) coverage.
Bootstrap and maintain infrastructure for data platform components—data processing pipeline, database, data lakehouse and data serving.
Collaborate with cross-functional teams, including ML algorithm, ML application, and Cloud Infra to align ML Platforms with overall autonomous driving system architecture.
자격요건
Bachelor's degree or higher in Computer Science, Engineering, Robotics, or a similar technical field.
Minimum of 5 years of experience in Data Engineering or ML Platform roles
Proficient in Python and solid experience in Python SDK development
Solid working experience in Databases (e.g., MongoDB, PostgreSQL, etc)
Hands-on experience with data pipeline job orchestration with Databricks Workflows or Apache Airflow, as well as integrating data pipelines with machine learning models
Extensive experience with data technologies and architectures such as Data Warehouse (e.g., Hive) or Lakehouse (e.g., Delta Lake)
Experience with Apache Spark or other big data computing engines
우대사항
Experience with autonomous vehicle sensor data (e.g., LiDAR, camera, radar)
Experience with ML model training lifecycle (e.g., data preparation, model training / validation / deployment, etc)
Understanding of modern AI frameworks (e.g., PyTorch, TensorFlow etc.)
Understanding data governance principles, data privacy regulations, and experience implementing security measures to protect data
복지 및 혜택
[42dot만의 업무 몰입 프로그램] https://42dot.ai/careers/program
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• 전형절차는 직무별로 다르게 운영될 수 있으며, 일정 및 상황에 따라 변동될 수 있습니다.
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