JobHabor

Senior Platform Engineer with MLOps and Databricks

Urban Connect
Location
Bucharest, Romania
Workplace
Remote
Employment
Full Time
Salary
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Posted 21d ago

Job Location

100% remote in Romania

Recruitment process

  • HR Discussion
  • Technical discussion - 1.5-hour
  • Client interview - 30 minutes

Role description

  • Design, implement, and maintain cloud-native platform to support AI and data workloads, with a focus on AI and data platforms such as Databricks and AWS Bedrock.
  • Build and manage scalable data pipelines to ingest, transform, and serve data for ML and analytics.
  • Develop infrastructure-as-code using tools like Cloudformation, AWS CDK to ensure repeatable and secure deployments.
  • Collaborate with AI engineers, data engineers, and platform teams to improve the performance, reliability, and cost-efficiency of AI models in production.
  • Drive best practices for observability, including monitoring, alerting, and logging for AI platforms.
  • Contribute to the design and evolution of our AI platform to support new ML frameworks, workflows, and data types.
  • Stay current with new tools and technologies to recommend improvements to architecture and operations.
  • Integrate AI models and large language models (LLMs) into production systems to enable use cases using architectures like retrieval-augmented generation (RAG).

Qualifications

  • 5+ years of professional experience in software engineering and infrastructure engineering.

Extensive experience building and maintaining AI/ML infrastructure in production, including model, deployment, and lifecycle management.

  • Strong knowledge of AWS and infrastructure-as-code frameworks, ideally with CDK.
  • Expert-level coding skills in TypeScript and Python building robust APIs and backend services.
  • Production-level experience with Databricks MLFlow, including model registration, versioning, asset bundles, and model serving workflows.
  • Expert level understanding of containerization (Docker), and hands on experience with CI/CD pipelines, orchestration tools (e.g., ECS) is a plus.
  • Proven ability to design reliable, secure, and scalable infrastructure for both real-time and batch ML workloads.
  • Ability to articulate ideas clearly, present findings persuasively, and build rapport with clients and team members.
  • Strong collaboration skills and the ability to partner effectively with cross-functional teams.

Nice to have

  • Familiarity with emerging LLM frameworks such as DSPy for advanced prompt orchestration and programmatic LLM pipelines.
  • Understanding of LLM cost monitoring, latency optimization, and usage analytics in production environments.
  • Knowledge of vector databases / embeddings stores (e.g., OpenSearch) to support semantic search and RAG.

Skills

  • Databricks
  • AWS Bedrock
  • CloudFormation
  • AWS CDK
  • TypeScript
  • Python
  • MLFlow
  • Docker
  • CI/CD
  • ECS
  • DSPy
  • OpenSearch
  • RAG

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