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Job Description

Your Role

  • Support Enablement & Readiness:
  • Analyze service onboarding processes to uncover bottlenecks, knowledge gaps, and manual steps that slow time-to-support.
  • Deploy agentic AI capabilities to assist with documentation discovery, runbook navigation, and contextual knowledge synthesis.
  • Standardize onboarding assets and readiness criteria, reducing reliance on tribal knowledge and SME dependency.
  • Operational Toil Reduction:
  • Identify recurring operational pain points and evaluate them as candidates for automation.
  • Assess the feasibility and impact of proposed automation ideas and maintain a prioritized backlog of improvement initiatives.
  • Drive execution and track outcomes against measurable targets.
  • Agentic Operations:
  • Validate agentic use cases across detection, triage, investigation, remediation, and documentation workflows.
  • Map current operational workflows to surface automation gaps and build a roadmap for a scalable agentic operations ecosystem.
  • Proactively generate new use cases that complement existing initiatives and maximize operational impact.
  • Visibility, Insights & Dashboards:
  • Design and maintain operational dashboards that surface real-time and trend-based insights across workflows and service health.
  • Translate raw operational data into clear, decision-ready visualizations for engineers and leadership.
  • Identify blind spots in current observability and collaborate with stakeholders to continuously improve what gets measured.
  • AI Onboarding & Future Initiatives:
  • Drive AI tool adoption across the team through enablement, documentation, and hands-on guidance.
  • Explore emerging AI capabilities and assess their fit for unmet operational needs.

Your Qualifications

  • Bachelor's degree in Computer Science, Mathematics, Applied Physics, Data Science, or a related field
  • 2 to 4 years in data engineering, platform engineering, MLOps, or operations-focused technical role.
  • Hands-on experience building automation solutions or data pipelines in a production environment.
  • Exposure to AI/ML tooling, agentic frameworks, or LLM-based applications is a strong plus.
  • Comfortable working in ambiguous environments, able to identify problems and propose solutions independently.

Operational Outcomes

  • Systems thinking: can zoom out to see the operational picture, then zoom in to implement a targeted solution.
  • Automation mindset: instinctively asks can this be automated before accepting manual work as the norm.
  • Data fluency: comfortable with SQL, querying operational data, and turning metrics into insights.
  • Clear communication: able to explain technical solutions to non-technical stakeholders and document work for future maintainability.
  • Collaborative: works well across engineering, operations, and leadership without needing constant direction.
  • Understands agentic AI concepts and design patterns including tool use, memory, multi-agent orchestration, and human-in-the-loop workflows and can translate these into practical operational use cases.

Plus Points

  • Proficient in Python, Pandas, Polars, and Apache Spark.
  • Hands-on experience with LangChain, LangGraph, RAG pipelines, and prompt engineering.
  • Familiar with PostgreSQL, Apache Iceberg
  • Understand end-to-end AI architecture - RAG, agentic systems, multi-model workflows, APIs, and production deployment.
  • Knowledgeable in ethical AI, bias mitigation, transparency, AI governance, and enterprise regulatory considerations.
  • Strong grasp of data modeling, feature stores, dimensional modeling, and dataset structure for ML pipelines.

More Info

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Key Skills

LangChain

Apache Iceberg

Polars

LangGraph

Data pipelines

Agentic frameworks

RAG pipelines

LLM-based applications

AI ML tooling

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