- Singapore
工作地点
职位描述
岗位职责
Univers Global Impact AI Lab
Are you looking to build intelligent systems that move beyond digital experiments and into the physical world? The Global Impact AI Lab at Univers was established to accelerate the next generation of enterprise AI and intelligent IoT innovation — transforming how industries operate, optimize resources, and build resilient infrastructure at scale.
Our mission is to translate advanced AI research into production-grade systems that enhance energy efficiency, operational performance, and sustainability across critical sectors. We focus on applied intelligence — where models and agentic systems connect directly with real-world data streams, operate in live environments, and continuously improve through operational feedback. AI is moving from promise to accountability.
Enterprises expect systems that deliver measurable outcomes in complex, high-stakes physical environments. The Global Impact AI Lab is building the intelligence layer that turns multimodal physical signals into enterprise-critical intelligence and action. If you are motivated by engineering scalable AI systems and enabling advanced models to operate reliably in real-world environments, this is an opportunity to translate innovation into measurable impact.
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Role Overview
As an AI Engineer at the Global Impact AI Lab, you will design and develop scalable AI systems that bridge advanced AI research and real-world deployment across enterprise and industrial verticals. This role sits at the intersection of applied AI research, system architecture, and production integration.
You will work closely with Applied AI and AIoT Scientists to transition validated prototypes into robust, scalable systems, collaborating with product and engineering teams to ensure smooth integration into production environments.
Operating in both 0→1 and scaling environments, you will build and refine model training and inference pipelines, develop agentic frameworks that coordinate reasoning and workflow execution, and architect AI systems that meet real-world requirements for latency, throughput, scalability, and runtime efficiency.
You will play a critical role in defining how AI systems are engineered so they can move from lab validation to production adoption — ensuring performance, reliability, and maintainability across cloud, hybrid, and edge deployments.
This role requires strong systems thinking, engineering discipline, and the ability to translate advanced AI capabilities into deployable, high-performance systems.
Key Responsibilities
Qualifications
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