GenAI Ops Engineer: Scale Multi-Agent AI Systems

EPAM Systems

Turkey

On-site

TRY 5,744,000 - 8,617,000

Full time

13 days ago

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Benefits offered by this job

Continuous upskilling
Diversity of tasks
Professional development support
Private health insurance
English courses
Recognition programs

Job summary

EPAM Systems is seeking a highly motivated GenAI Operations Engineer to build, deploy, and maintain the operational infrastructure for generative AI models and services. You will work with data scientists, ML engineers, and software developers to ensure GenAI applications are scalable, reliable, and efficient across major cloud platforms.

You will design and manage CI/CD for LLMs, orchestrate multi-agent workflows, and integrate tools securely while leveraging Terraform and other IaC practices.

Qualifications

  • 3+ years in a DevOps, SRE or MLOps role with a focus on cloud infrastructure and a background in cloud services (AWS, GCP, Azure).
  • Proficient in building and managing CI/CD pipelines (Jenkins, GitLab CI or cloud-native) and scripting language (Python, Bash).
  • Familiar with IaC tools (AWS CDK, CloudFormation, Terraform) and containerization/orchestration (Docker, Kubernetes).
  • Experience deploying and operating LLM inference (vLLM, Triton, TGI, Ray Serve, KServe/Seldon).
  • Hands-on with LLM/app tracing and metrics (OpenTelemetry + Langfuse, Arize Phoenix, WhyLabs) and building eval pipelines.
  • Skilled in operating retrieval pipelines: embedding generation, indexing/refresh strategies, vector DBs (Pinecone, Weaviate, Milvus, FAISS) and relevance monitoring.
  • Experience with multi-agent workflows (LangGraph, CrewAI, AutoGen-like), state management, retries, rate limits, tool-failure handling and auditing.
  • Experience implementing guardrails: secrets isolation, tool/API permissions, prompt-injection defenses, data leakage prevention, PII redaction and policy enforcement.

Responsibilities

  • Build and Manage CI/CD Pipelines: Design, implement and maintain robust, automated CI/CD pipelines for training, evaluating and deploying large language models (LLMs) and AI agents.
  • Orchestrate Agentic AI Workflows: Design, deploy and manage sophisticated multi-agent systems Ensure seamless Agent-to-Agent (A2A) communication and collaboration between specialized agents to automate complex business processes
  • Manage Tool Integration: Implement and manage secure, scalable integrations between AI agents and external tools/APIs, leveraging open standards like the Model Context Protocol (MCP) to ensure interoperability
  • Leverage AI-Powered Development: Utilize AI-powered development tools to accelerate the entire software development lifecycle from writing infrastructure code and tests to troubleshooting operational issues in cloud environments
  • Infrastructure as Code (IaC): Utilize cloud-native IaC services or cloud-agnostic tools like Terraform to define and manage the infrastructure required for GenAI workloads
  • Model Monitoring and Observability: Implement comprehensive monitoring and logging solutions to track model and agent performance, resource utilization and system health For agentic systems, this includes tracing the agent's actions and logging the multi-step conversational flow
  • Scalability and Performance Optimization: Design and implement scalable architectures for model serving and inference Continuously optimize the performance and cost-effectiveness of our GenAI services
  • Security and Compliance: Implement and enforce security best practices for our GenAI infrastructure and data Ensure compliance with industry standards and regulations

Skills

CI/CD pipelines
Cloud platforms AWS/GCP/Azure
IaC Terraform
Docker Kubernetes
Python Bash scripting
LLM inference deployment
Monitoring observability
Security compliance

Education

Master's degree or PhD in CS/AI

Tools

Jenkins
GitLab CI
Terraform
AWS CDK / CloudFormation

Job description

EPAM Systems is seeking a highly motivated GenAI Operations Engineer to build, deploy, and maintain the operational infrastructure for generative AI models and services. You will work with data scientists, ML engineers, and software developers to ensure GenAI applications are scalable, reliable, and efficient across major cloud platforms.

You will design and manage CI/CD for LLMs, orchestrate multi-agent workflows, and integrate tools securely while leveraging Terraform and other IaC practices.

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