Senior ML Engineer

SoftServe, Inc.
United States
1 day ago
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Role details

Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Experience level
Expert
Experience required
3 years minimum
Working hours
Regular working hours
Languages
English
Job source

Tech stack

Artificial Intelligence Airflow Amazon Web Services Microsoft Azure Cloud Engineering Continuous Integration Data Stores Python (Programming Language) Machine Learning Azure Machine Learning Software Deployment Management of Software Versions
+11 more
Cloud Platform System Feature Engineering Data Ingestion Multi-Agent Systems Core Data Kubernetes Information Technology Machine Learning Operations Virtual Agents Data Pipelines Databricks

Job description

In this role, you will engineer and productionize end-to-end ML systems - from data pipelines and LLMOps infrastructure to agentic multi-agent workflows - as part of SoftServe’s AI and Data Science Center of Excellence, a community of over 170 AI/ML experts. You’ll work at the intersection of applied research and real-world delivery, collaborating with data scientists, engineers, and clients to bring cutting-edge NLP, RAG, and multimodal AI solutions to production scale., * Design and implement end-to-end ML pipelines - from data ingestion and feature engineering to model training, optimization, and production deployment

  • Build and maintain LLMOps pipelines using MLflow, Langfuse, LangSmith, or Weights & Biases to enable model observability, reproducibility, and prompt versioning
  • Collaborate with Data Scientists, Engineers, and clients to translate business requirements into production-ready ML solutions for NLP, RAG systems, and multimodal models
  • Develop and orchestrate agentic systems and multi-agent workflows using frameworks such as LangGraph or CrewAI, supporting autonomous AI applications at scale
  • Enhance and manage ML infrastructure including CI/CD/CT pipelines, cloud environments on AWS, Azure, or GCP, data stores, monitoring, and security
  • Integrate and package ML services into real applications, ensuring they meet reliability and maintainability standards for production use
  • Operate workflow orchestration tools such as Databricks Jobs/Workflows, Kubeflow, or Airflow to automate and monitor ML pipeline execution

Requirements

  • Minimum 3 years of hands-on experience building and deploying real-world ML solutions in production
  • Master’s degree in Computer Science or a related field
  • Strong Python proficiency across the core data science and ML ecosystem, including model development, packaging, and service integration
  • Advanced experience with LLMOps, AgentOps, and experiment tracking tools such as MLflow, Langfuse, LangSmith, and Weights & Biases
  • Solid knowledge of CI/CD/CT practices for ML systems and workflow orchestration tools such as Databricks Workflows, Kubeflow, or Airflow
  • Proven experience with cloud-based AI/ML services on AWS, Azure, or GCP
  • Working knowledge of agentic AI frameworks, including LangGraph, CrewAI, or similar tools for building autonomous and multi-agent systems
  • Upper-intermediate or higher proficiency in English, both spoken and written

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