AI Solutions Engineer (Engineering Infrastructure) - Sea Labs

Sea

Jakarta Utara

On-site

IDR 350,000,000 - 700,000,000

Full time

9 days ago
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Job summary

Sea is seeking an AI Solutions Engineer to design and develop the Smart platform and related AI systems. You will build agent runtimes, toolchains, memory, orchestration, and sandboxing, while collaborating with cross‑functional teams to deploy real-world AI use cases.

You’ll focus on platform reliability, observability, and production readiness, working with vector stores, RAG, and middleware. Join a fast-paced, experimentation‑driven environment that values learning and practical AI impact.

Qualifications

  • Bachelor’s degree or higher in Computer Science, Engineering, or a related field.
  • 2+ years of relevant experience in software development or strong fundamentals and hunger to learn.
  • Strong programming skills in Python (primary) with Golang familiarity.
  • Solid CS fundamentals: algorithms, data structures, networking, systems, architecture.
  • Backend experience designing cloud-ready services with databases, queues, caching, etc.
  • Familiarity with AI agent frameworks like LangChain/LangGraph or eagerness to learn them.
  • Strong problem-solving mindset and ability to navigate ambiguity with curiosity and creativity.
  • Willingness to work full stack; backend prioritized but well-rounded engineers valued.
  • Understanding of distributed systems and cloud-native principles (12-factor app).
  • Passion for building AI systems that people actually use.

Responsibilities

  • Design and develop the Smart platform and other AI systems, covering agent runtimes, toolchains, memory, orchestration, logging, planning, and sandboxing.
  • Collaborate with teams across departments to land and scale real-world AI use cases.
  • Drive internal agent adoption in engineering infra by replacing traditional operations with intelligent agent workflows.
  • Work on platform reliability and observability to ensure systems are performant, debuggable, and production-ready.
  • Support operations and development work, shipping features and running real services.
  • Manage and operate supporting infrastructure, including vector stores, retrieval systems (RAG), and middleware components.
  • Continuously experiment and bring in the latest AI advancements into production.
  • Optimize system performance through tuning, profiling, and root-cause analysis.
  • Design and develop automated technical operations platform to reduce manual work and improve reliability.
  • Drive capacity and resource management for scalable systems.
  • Plan stress and load tests to identify bottlenecks and improve throughput.
  • Improve monitoring, logging, alerting, and incident response practices.
  • Troubleshoot complex production issues across application, middleware, and infrastructure layers.

Skills

Python
Golang
Algorithms
Distributed Systems
Cloud-Native
Backend design
LangChain/LangGraph
Problem-solving
Full stack

Education

Bachelor’s degree in CS/Engineering

Tools

LangChain
LangGraph
Vector databases
Observability tools

Job description

About the Team

The Engineering and Technology team is at the core of the Shopee platform development. The team is made up of a group of passionate engineers from all over the world, striving to build the best systems with the most suitable technologies. Our engineers do not merely solve problems at hand; We build foundations for a long-lasting future. We don't limit ourselves on what we can or can't do; we take matters into our own hands even if it means drilling down to the bottom layer of the computing platform. Shopee's hyper-growing business scale has transformed most "innocent" problems into huge technical challenges, and there is no better place to experience it first-hand if you love technologies as much as we do.

About Team

The AI Solutions team builds and pioneers the future of AI-driven automation at Sea. We are the developers of Smart (Sea Multi-Agent Realization Platform) - the company's flagship AI agents platform that enables teams across the company to automate their workflows using large language model (LLM) agents. But Smart is just the beginning. Our team is also spearheading a wide range of AI initiatives, especially within the engineering infrastructure domain, from internal developer tooling to intelligent operations. We believe that the future of infrastructure lies in intelligent automation, and we’re committed to building it from the ground up. We thrive in a fast-paced, sharing-first culture, with a strong emphasis on learning, creativity, and experimentation. We work hard and play hard, explore ideas on the cutting edge, and aim to pioneer bold, practical solutions to complex real-world problems. If you want to shape how AI changes engineering at scale - this is the place.

Job Description
  • Design and develop the Smart platform and other AI systems, covering all essential agent platform components - agent runtimes, toolchains, memory, orchestration, logging, planning, and sandboxing.
  • Collaborate with teams across departments - both tech and non-tech - to land and scale real-world AI use cases.
  • Drive internal agent adoption in engineering infra by replacing traditional operations with intelligent agent workflows.
  • Work on platform reliability and observability to ensure our systems are performant, debuggable, and production-ready.
  • Support operations and development work in a healthy balance - you’ll gain experience in shipping features and running real services.
  • Manage and operate supporting infrastructure, including vector stores, retrieval systems (RAG), and middleware components.
  • Continuously experiment, learn, and bring in the latest advancements from the AI/agent ecosystem into production.
  • Continuously optimize system performance through tuning, profiling, and root-cause analysis.
  • Design and develop an automated technical operations platform to reduce manual work and improve reliability.
  • Drive capacity and resource management, ensuring systems scale efficiently under varying workloads.
  • Plan and execute stress tests and load tests to identify bottlenecks, improve throughput, and eliminate redundancy.
  • Improve system reliability, availability, and observability through better monitoring, logging, alerting, and incident response practices.
  • Troubleshoot complex production issues across application, middleware, and infrastructure layers.
Requirements
  • Bachelor’s degree or higher in Computer Science, Engineering, or a related field.
  • 2+ years of relevant experience in software development - or fresh graduates with strong fundamentals and hunger to learn.
  • Strong programming skills in Python (primary) - familiarity with Golang is a plus.
  • Solid CS fundamentals - algorithms, data structures, networking, systems, and architecture.
  • Backend experience designing cloud-ready services using databases, queues, caching, etc.
  • Familiarity with modern AI agent frameworks like LangChain, LangGraph, or strong interest in learning them.
  • Strong problem-solving mindset and ability to navigate ambiguity with curiosity and creativity.
  • Willingness to work full stack - we prioritize backend but value well-rounded engineers.
  • General understanding of distributed systems and cloud-native principles (e.g. the twelve-factor app), including how services are deployed, scaled, and load-balanced in a containerized environment.
  • Passion for building AI systems that people actually use.
Skills below are optional but preferred
  • Experience building AI-powered platforms, assistants, or automation tools.
  • Familiarity with agent patterns like ReAct (Reasoning and Action), tool chaining, or multi-agent orchestration.
  • Knowledge of RAG systems, vector databases, or prompt tuning.
  • Prior experience in developer tools, internal platforms, or large-scale systems.
  • Exposure to observability, debugging, incident workflows, or service reliability.
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