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Razer

Data Scientist

Posted 2 Days Ago
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In-Office
Singapore, SGP
Junior
In-Office
Singapore, SGP
Junior
The Data Scientist will design and scale agentic AI systems, focusing on developing autonomous AI agents, LLM fine-tuning, and integrating AI services while optimizing performance and collaborating with engineering teams.
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Joining Razer will place you on a global mission to revolutionize the way the world games. Razer is a place to do great work, offering you the opportunity to make an impact globally while working across a global team located across 5 continents. Razer is also a great place to work, providing you the unique, gamer-centric #LifeAtRazer experience that will put you in an accelerated growth, both personally and professionally.

Job Responsibilities :

Joining Razer will place you on a global mission to revolutionize the way the world games. Razer is a place to do great work, offering you the opportunity to make an impact globally while working across a global team located across 5 continents. Razer is also a great place to work, providing you the unique, gamer-centric #LifeAtRazer experience that will put you in an accelerated growth, both personally and professionally.

This Data Scientist role sits within the Agentic AI Pod, focused on designing, building, and scaling agentic AI systems within Razer’s internal AI platform. You will play a critical role in developing autonomous and semi-autonomous AI agents that combine large language models (LLMs), retrieval systems, fine-tuned models, and tool-based orchestration to enable intelligent, real-time capabilities across Razer’s gaming and platform experiences.

The ideal candidate is a technically strong AI systems engineer with hands-on experience in agentic architectures, RAG pipelines, LLM fine-tuning, and production deployment. You will work across the full lifecycle—from data preparation and model adaptation to system integration, deployment, and continuous optimization—while collaborating closely with AI Software Engineers, Platform Engineers, and DevOps teams.

Key Responsibilities

  • Design, implement, and maintain agentic AI architectures, including planning, tool use, memory, and multi-step reasoning
  • Build, operate, and optimize Retrieval-Augmented Generation (RAG) pipelines using embeddings, vector databases, and internal knowledge sources
  • Perform LLM fine-tuning and adaptation (e.g., supervised fine-tuning, instruction tuning, parameter-efficient methods such as LoRA) to improve task performance and domain alignment
  • Develop internal frameworks, tooling, and orchestration layers for LLM-driven agents and workflows
  • Integrate and adapt 3rd-party AI services (LLMs, speech, vision, agent platforms) into agent-based systems
  • Evaluate, prototype, and productionize agent frameworks, models, and AI platforms, focusing on system performance, cost, and architectural fit
  • Deploy and operate production-grade AI systems, addressing scalability, latency, reliability, observability, and cost controls
  • Conduct benchmarking, evaluation, and trade-off analysis across models, fine-tuning strategies, agent behaviors, and retrieval approaches
  • Collaborate with platform and infrastructure teams to ensure secure, compliant, and maintainable AI systems
  • Stay current with advances in agentic AI, LLM fine-tuning techniques, RAG methods, and deployment patterns

    Pre-Requisites :

    Pre-Requisites

    Technical Skills

    • Minimum 2+ years of experience in AI systems engineering, agentic AI development, or applied ML in production
    • Strong proficiency in Python and solid software engineering fundamentals (API design, testing, modular architecture)
    • Strong proficiency in prompt design and prompt engineering for agentic AI systems (instruction design, role prompting, tool-use prompting, iterative refinement, and evaluation)
    • Hands-on experience with LLM APIs (e.g., OpenAI, Claude, Gemini) and open-source LLMs
    • Practical experience with LLM fine-tuning workflows, including data preparation, training, evaluation, and deployment
    • Experience with agent and RAG frameworks such as LangChain, LlamaIndex, AutoGen, or similar
    • Experience deploying and operating AI systems with attention to latency, throughput, and reliability
    • Familiarity with cloud platforms (AWS, GCP, Azure) and AI deployment / MLOps workflows (CI/CD, monitoring, versioning)

    Preferred Qualifications

    • Experience with parameter-efficient fine-tuning (PEFT) techniques such as LoRA, QLoRA, or adapters
    • Hands-on experience with vector databases (e.g., Pinecone, Weaviate, Milvus, FAISS)
    • Strong understanding of prompt engineering, retrieval strategies, and RAG evaluation
    • Experience operating and debugging agent-based systems in production
    • Ability to clearly communicate architectural decisions and trade-offs
    • Passion for gaming and interest in intelligent, interactive AI experiences
    • Comfortable working in a fast-paced, high-pressure, agile environment

    Education & Experience

    • Master’s degree or PhD in Computer Science, Artificial Intelligence, Machine Learning, or a closely related technical discipline

    Razer is proud to be an Equal Opportunity Employer. We believe that diverse teams drive better ideas, better products, and a stronger culture. We are committed to providing an inclusive, respectful, and fair workplace for every employee across all the countries we operate in. We do not discriminate on the basis of race, ethnicity, colour, nationality, ancestry, religion, age, sex, sexual orientation, gender identity or expression, disability, marital status, or any other characteristic protected under local laws. Where needed, we provide reasonable accommodations - including for disability or religious practices - to ensure every team member can perform and contribute at their best.

    Are you game?

    Top Skills

    Agent And Rag Frameworks
    Ai Deployment / Mlops Workflows
    Azure)
    Cloud Platforms (Aws
    GCP
    Llm Apis
    Python
    Vector Databases

    Razer Singapore Office

    1 One-north Cres, Singapore, 138538

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