AI Operation Lead

Employer: SCOR
Domain:
  • Insurances - Financial Intermediaries
  • Accounting - Finance
  • IT Software
  • Job type:: full-time
    Job level: 1 - 5 ani experienta
    Location:
  • BUCURESTI
  • Updated at: 22-09-2026
    Remote work: On-site

    The AI Operations Lead contributes hands-on to integration, deployment and monitoring of AI systems such as ML, GenAI, RAG and agentic workflows. The role focuses on a subset of products/services and ensures operational excellence, observability, and performance. 

    Key duties and responsibilities

    • Implement and operate integration of AI capabilities into enterprise products following standard patterns 

    • Contribute to deployment of: 

      • RAG pipelines

      • Copilots and AI assistants

      • Agentic workflows

      • Predictive ML services

    •  Support delivery squads in integrating AI services into business applications 

    • roubleshoot and resolve integration or runtime issues in production

    AI Observability & Monitoring (Core focus)

    • Design and implement AI observability frameworks, including: 
      • Model performance monitoring (drift, quality, hallucination signals)
      • Usage and adoption metrics
      • Latency, reliability, and system health
    • Ensure proper logging, tracing, and monitoring of AI pipelines
    • Contribute to definition of AI SLAs/SLOs aligned with business expectations
    • Support incident management and post-mortem analysis for AI systems

    Cost & Performance Optimization

    • Monitor AI-related cloud consumption and inference costs
    • Optimize pipelines for efficiency (model selection, caching, orchestration)
    • Contribute to FinOps practices specific to AI workloads

    Business Acumen

    • Understands operational impact of AI systems on business processes

    • Able to balance performance, cost, and quality trade-offs

    • Communicates effectively with technical and business stakeholders

    Required experience & competencies

    • 5-8 years in software/ML engineering 

    • Cloud (Azure), Kubernetes, Python 

    • Experience with GenAI and ML systems 

     

    Technical Skills

    • Strong hands-on experience in: 

      • Python, APIs, microservices architecture

      • Cloud environments (Azure preferred, AWS/GCP acceptable)

      • Kubernetes and containerized deployments

    • Experience with: 

      • MLOps / LLMOps tooling

      • Monitoring/observability tools (e.g., logs, metrics, tracing)

      • Data pipelines and distributed systems

    • Understanding of: 

      • GenAI / LLM systems (RAG, embeddings, prompting)

      • ML lifecycle and deployment patterns

     

    Soft skills

    • Hands-on and problem-solving mindset
    • Ability to debug complex AI systems in production 
    • Strong collaboration with engineering and product teams 
    • Ability to explain technical issues clearly to non-experts 
    •  Proactive and continuous improvement mindset

    Business acumen

    • Can adapt his/her speech to make relevant for business users
    • Can interact effectively with top management
    • Can support in produce presentations or architecture material

      Required Education 

    • Master's degree (Ph. D. is a plus) in Science, Technology, Engineering, Computer Science,
    • Bachelor's degree plus ASA or similar work experience is accepted in place of a relevant Master's degree

    • Certifications on Cloud or Microservices or Kubernetes (CKAD) are plus.

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