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全职 AI Engineering Manager — Vision AI - Edge Intelligence 工作, 薪水, SynaXG 公司招聘中 - Ricebowl

AI Engineering Manager — Vision AI - Edge Intelligence

SynaXG

Undisclosed

Singapore

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工作地点

  • Singapore

职位描述

岗位职责

Location: Singapore 

Role Summary

We are seeking an experienced AI Engineering Manager to lead the development of Vision AI and Edge Intelligence systems for real-time, low-latency applications.

The role focuses on building end-to-end AI systems across perception models, multimodal intelligence, real-time inference optimization, and edge deployment. This position emphasizes production-grade delivery, system performance, scalability, and real-world deployment quality.

 

Key Responsibilities

Vision AI Development & Edge Real-Time Inference

• Lead end-to-end Vision AI development, including object detection, segmentation, tracking, video understanding, and semantic scene understanding

• Drive the adoption of multimodal and vision-language models, including MLLMs, VLMs, and Vision Agent architectures for natural-language interaction and agentic perception workflows

• Design and optimize low-latency inference pipelines for edge deployment, balancing model accuracy, latency, compute efficiency, memory usage, and deployment feasibility

• Apply model optimization techniques such as quantization, pruning, knowledge distillation, TensorRT, ONNX, or similar production inference frameworks

• Ensure real-time system performance for production applications

Cross-Functional Integration

• Work closely with platform, system, and RAN teams to integrate AI capabilities into commercial products

• Translate product requirements into robust AI system designs and implementation plans

• Ensure AI solutions meet real-world deployment constraints, including latency, compute, reliability, and maintainability

 

Team Leadership

• Lead, mentor, and grow a high-performing AI engineering team

• Define the technical roadmap for Vision AI and Edge Intelligence capabilities

• Evaluate, adopt, and operationalize emerging AI technologies and system architectures

 

Required Skills & Experience

• Strong background in computer vision, deep learning, and production AI system development

• Proficiency in PyTorch, TensorFlow, or equivalent deep learning frameworks

• Hands-on experience with detection, segmentation, tracking, video analytics, or related vision AI applications

• Practical experience with model deployment and optimization using ONNX, TensorRT, or similar tools

• Proven ability to build and scale AI systems from prototype to production

 

Preferred Skills

• Experience with multimodal learning, vision-language models, foundation model adaptation, MLLMs, VLMs, or related multimodal AI systems

• Knowledge of Vision Agent concepts, including vision-language reasoning, video question answering, video summarization, visual grounding, and agentic interaction with live or recorded video streams

• Knowledge of distributed inference systems and cloud-edge collaborative architectures

• Experience with Kubernetes, containerized deployment, or cloud-edge infrastructure

• Background in real-time video processing, telecom systems, robotics, or Physical AI applications

 

Education & Qualifications

• Bachelor’s degree or higher in Computer Science, Artificial Intelligence, Electrical Engineering, or related technical field

• Master’s or PhD preferred for senior candidates or candidates with strong research background

• Strong foundation in machine learning, deep learning, or applied mathematics is highly desirable

 

Experience Requirements

• Minimum 8 years of relevant industry experience in AI / Machine Learning / Computer Vision

• Expert in Nvidia Metropolis, experience in Nvidia Isaac, Cosmos and Omniverse desired

• Proven track record of delivering production-grade AI systems in real-world environments

  • • Experience in edge AI, real-time systems, or large-scale deployment is highly preferred

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