platform engineer for AI platforms

Playamp

United States

On-site

USD 150,000 - 230,000

Full time

6 days ago
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Benefits offered by this job

Paid annual leave
Medical support
Individual development plan
Internal training programs
Gym membership reimbursement

Job summary

Playamp ищет опытного инженера по инфраструктуре искусственного интеллекта для создания и поддержания внутренней AI-платформы. Ваша работа охватит шлюз моделей, оркестрацию агентов и конвейеры RAG, связывая LLMs с внутренними системами на GCP.

Нужен практический опыт в продакшн-инфраструктуре, Kubernetes, Terraform и Python, умение управлять расходами на AI и работать в рамках DevOps. Условия — официальное трудоустройство и развитие в международной команде MTG.

Qualifications

  • 5–7 лет в продакшн инфраструктуре, DevOps или платформенной инженерии.
  • 2+ года в AI-инфраструктуре с реальными системами.
  • Опыт MCP и RAG, интеграции MCP серверов и доступ к LLMs.
  • Опыт проектирования продакшн-агентных систем с многошаговыми сценариями.
  • Глубокий опыт в GCP, Kubernetes, IaC, Terraform, CI/CD, GitOps.
  • Сильные навыки Python и работа с современными LLM-серверами.

Responsibilities

  • Проектировать, строить и эксплуатировать внутреннюю AI-платформу.
  • Продакшн-инфраструктура на GCP: Vertex AI, GKE, Terraform, GitOps.
  • Интеграция AI в DevOps и автоматизационные пайплайны.
  • Управление жизненным циклом production агентов: реестр, версии, наблюдаемость.
  • Поддержка, безопасность, инцидент-реакция и бюджетирование затрат на AI.

Skills

Продакшн инфраструктура
DevOps
AI инфраструктура
Kubernetes
Terraform
GCP
Python
GitOps
LLM serving stacks

Tools

GCP (Vertex AI)
Kubernetes
Terraform
CI/CD
LangChain
Google ADK

Job description

Описание

Playamp is MTG’s Midcore District, bringing together six gaming studios that create games played by tens of millions of people across mobile and PC. It provides a shared ecosystem spanning marketing, data analytics, technology, player services, publishing, D2C distribution, and infrastructure, enabling each studio to focus on building games while benefiting from shared expertise and capabilities.

Задачи
  • Design, build, and operate Playamp’s internal AI platform, including the model gateway, agent orchestration, RAG pipelines, vector stores, and MCP servers connecting LLMs to internal systems
  • Productionize AI infrastructure on GCP using Vertex AI, GKE, managed and self-hosted inference, Terraform, and GitOps
  • Bring AI into DevOps and automation workflows
  • Own the production agent lifecycle, including registry, versioning, observability, tracing, evaluations, cost tracking, and regression gates
  • Share standard senior DevOps responsibilities, including production ownership, on-call, networking, security hardening, and incident response for the AI platform’s core infrastructure
  • Develop guardrails that help security teams track and monitor AI usage across the company
Требования
  • 5–7 Years of production infrastructure, DevOps, or platform engineering experience, including 2+ years dedicated to AI infrastructure involving real systems rather than POCs
  • Practical experience with MCP and RAG, including building or integrating MCP servers and exposing internal systems to LLMs
  • Experience designing and shipping production agentic systems with multi-step, tool-using agents, guardrails, retries, and evaluation
  • Deep cloud experience, preferably GCP, and solid Kubernetes, networking, Infrastructure as Code, Terraform, CI/CD, and GitOps fundamentals
  • Experience building or owning LLM/agent evaluation harnesses, including golden datasets, offline and online evaluations, CI regression gates, and production A/B testing of prompts and agents
  • Strong Python skills and hands-on experience with modern LLM serving stacks and at least one industry-standard agent framework, such as Google ADK or LangChain
  • Experience managing production AI spend, including prompt and semantic caching, model selection trade-offs, batch versus real-time routing, and per-team budgets and showback
  • Будет плюсом: Cost engineering for AI
Условия
  • Officially registered full-time employment
  • Paid annual leave according to local regulations
  • Medical support and paid leave
  • Individual development plan and regular feedback
  • Professional seminars, workshops, courses, and internal training programs
  • Reimbursement of gym membership fees
  • Benefits may vary by country
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