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ML Operations Engineer (AI/LLM) - Mercari

Mercari
Posted 2 hours ago
🇯🇵Japan🏢Hybrid📁Data & Analytics
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本ポジションは日本語JDの用意がありません。 ML Operations Engineer (AI/LLM) - Mercari Employment Status: Full-time Work Hours: Full Flextime (no core time) Office: Roppongi For more details, see the Overview of Our Positions section on our Careers site. About Mercari Circulate all forms of value to unleash the potential in all people "What can I do to help society thrive with the finite resources we have?" The Mercari marketplace app was born in 2013 out of this thought by our founder Shintaro Yamada as he traveled the world. We believe that by circulating all forms of value, not just physical things and money, we can create opportunities for anyone to realize their dreams and contribute to society and the people around them. Mercari aims to use technology to connect people all over the world and create a world where anyone can unleash their potential. For more information about Mercari Group’s mission, see Mercari’s Culture Doc Organization/Team Mission Mercari Engineering Principles Mercari Engineering Principles are a shared understanding that serves as the foundation of engineering beliefs and behavior at Mercari. The Engineering Principles are designed to complement the organizational identity (Mercari’s mission, values, and culture) from an engineering viewpoint. These principles ultimately help us achieve Mercari’s mission by defining the ideal state we seek to realize in the long term. Passion For The Product Grow Together Solve Through Mechanisms Collaborate Openly For more details, please see the following link: Engineering Culture The AI / LLM Team’s mission is focused on three core pillars, “product”, "enablement" and "research", delivering new AI-driven features and user experiences to maximize product-facing impact for Mercari's business. We do this both through independent initiatives owned by our team, as well as by horizontally collaborating with product, engineering, and research teams across the entire organization. As an MLOps engineer on the AI/LLM team, you will own how our machine learning and LLM models reach production and stay healthy there in our cloud-native environment. Your focus is the production serving, deployment, and operations that turn models into reliable, cost-efficient services, seamlessly integrating with our machine learning operations to serve tens of millions of users. Work Responsibilities Data and Model Orchestration: Own the end-to-end orchestration of model inference, including integrating with DataServ for retrieval (BigQuery, BigTable, Valkey) and managing the Model Inference Gateway and Console. Model Serving and Deployment: Own production model serving on the cloud-native NVIDIA and TPU stacks (Triton Inference Server, TensorRT-LLM, JAX/TPU Gateways). Manage model repositories, dynamic batching, and concurrent model execution. Build CI/CD, rollout, and rollback paths for safe, scalable model deployment, and automate provisioning and lifecycle management (Terraform, Kubernetes) so the platform scales seamlessly across teams. Inference Performance Optimization: Profile and optimize deployments across LLM and non-LLM workloads, including model compilation, quantization, and batching strategies to hit latency and throughput targets while managing cost. Maintain performance baselines and regression detection. Monitoring and Reliability: Build robust monitoring and alerting for model health and latency, including service-level metrics for the data retrieval and inference gateway layers. Define SLOs and own on-call and incident response for the serving layer. Model Quality and Evaluation: Build automated evaluation and quality monitoring into the deployment path, regression and drift detection, offline/online evaluation, and LLM output quality checks, so models stay healthy long after launch. Research-to-Production Enablement: Partner with ML engineers and researchers to turn experimental models into production-ready services, providing self-service workflows and abstractions that let teams deploy safely and quickly without deep infrastructure expertise. Unique Challenges Build and operate the production ML serving and Data Orchestration platform behind Mercari Group's AI and LLM features, serving tens of millions of users. Drive the strategy for model inference at scale, bridging the gap between complex data retrieval and fast-moving ML model inference to ensure high-performance, cost-effective service delivery. Shape Mercari's next-generation LLM serving stack, from inference optimization (quantization, dynamic batching, KV caching) to the evaluation and execution infrastructure needed for emerging agentic AI workloads. Qualifications Required Experience/Skills Shared belief in the mission and values of Mercari Group. Bachelor's degree in Computer Science, Engineering, or a related field, or equivalent practical experience. 5+ years of software engineering experience, including proven experience in production MLOps: end-to-end model deployment, serving, and CI/CD in cloud environments. Experience designing and operating large-scale, high-availability distributed systems, including observability, SLO definition, and incident response. Strong experience in cloud-native infrastructure (Kubernetes, Docker). Proficiency in Python and infrastructure-as-code (Terraform). Excellent written and verbal communication. Preferred Experience/Skills Experience integrating ML serving with large-scale distributed data layers (e.g., data warehouses, wide-column stores, in-memory caches). Expertise in model inference optimization (TensorRT-LLM, quantization, JAX). Experience operating large-scale model inference gateways and orchestrators. 2+ years of hands-on experience operating GenAI/LLM workloads in production (e.g., LLM serving frameworks, token throughput and cost optimization). Experience building LLM evaluation, guardrail, or quality-monitoring pipelines (e.g., LLM-as-judge, golden datasets, drift detection). Experience with serving infrastructure for RAG or agentic AI workloads (vector search, tool-calling execution environments). Experience partnering closely with research or data science teams to bring research innovations into production. Master's or Ph.D. in a related technical field. Language English: Proficient (CEFR - B2) Japanese: Independent (CEFR - B2) optional For details about CEFR, see here . Learn More About Mercari Group Careers site: https://careers.mercari.com/en/ Mercan: https://mercan.mercari.com/en/ Social media: X / Linkedin Recruiting at Mercari At Mercari Group, we value empathizing with and embodying the mission and values ​​of the Group and each company. To promote the creation of an organization that maximizes the total amount of value exhibited by all members, we would like to understand the experience and skills of each candidate as accurately as possible. Recruiting cycle at Mercari Group Application screening Skill assessment: For engineering positions, you will be asked to complete a skill assessment on HackerRank or GitHub. For non-engineering positions, you may be asked to complete an assessment depending on the position. (The timing of the assessment may coincide with the interview process.) Interview: The number of interviews may vary depending on the position. Reference check: We will ask for online references around the timing of the final interview. Offer: Offers will be determined carefully in consideration of the final interview and the reference check. Learn more about our recruiting process here . Equal Opportunity Hiring Here at Mercari, we work to realize a world in which no one’s potential is limited by their background and everyone has the opportunity to freely create value. We also firmly believe that a mindset of Inclusion & Diversity is essential for us to achieve our mission. This, of course, extends to our hiring practices as well. Mercari is committed to eliminating discrimination based on age, gender, sexual orientation, race, religion, physical disability, and other such factors so that anyone who shares our mission and values can join us, regardless of their background. For more details, please read our I&D statement . Please read and acknowledge our Privacy Policy prior to submitting your application.

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