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GraphRAG Engineer

Role overview

Qualifications

  • Deep operational and development experience with Neo4j (Cypher, APOC, causal clustering)
  • Proven expertise with pgvector (PostgreSQL), embeddings management, hybrid search techniques
  • Hands-on experience managing relational (PostgreSQL) and graph databases across AWS and GCP

Responsibilities

  • Provision, tune, and maintain production-grade clusters for Graph databases and vector storage engines
  • Build automated ingestion pipelines to parse Git repositories and metadata into a unified enterprise knowledge graph
  • Integrate microservices and knowledge stores with the central Enterprise AI Gateway

Key facts

Hard skills

Other skills

  • Teamwork
  • Problem Solving

About the company

Cloudera logo

Cloudera

Computer Software / SaaS

At Cloudera, we believe that data can make what is impossible today, possible tomorrow. We empower people to transform complex data into clear and actionable insights. Cloudera delivers an enterprise data cloud for any data, anywhere, from the Edge to AI. Powered by the relentless innovation of the open source community, Cloudera advances digital transformation for the world's largest enterprises. Learn more at Cloudera.com.

Company details

Company typeLarge
IndustryComputer Software / SaaS
Company size1001 - 5000

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Job description

Business Area:

IT

Seniority Level:

Mid-Senior level

Job Description: 

At Cloudera, we empower people to transform complex data into clear and actionable insights. With as much data under management as the hyperscalers, we're the preferred data partner for the top companies in almost every industry.  Powered by the relentless innovation of the open source community, Cloudera advances digital transformation for the world’s largest enterprises.

About the Team & Role

We are engineering an enterprise-grade Everything-as-Code (EaC) AI-First Platform that transforms modern enterprise operations through automated delivery pipelines, machine-readable specifications, and agentic intelligence. As a GraphRAG Engineer, you will own the semantic, vector, and graph storage layer powering the core context engine for our enterprise AI utilities and Internal Developer Portal.


Operating at the intersection of modern database administration, distributed event streaming, and generative AI pipelining, you will bridge our AWS MSK event mesh with downstream knowledge graphs and vector engines across AWS and GCP. You will lead the deployment of our SDLC Context Graph and GraphRAG Engine, enabling automated Change Advisory Board (CAB) compliance, semantic code/schema lineage tracking, and enterprise LLM proxy integrations.


As a GraphRAG Engineer you will:

  • Graph & Vector Database Infrastructure: Provision, tune, and maintain production-grade clusters for Graph databases (Neo4j using Cypher, APOC, and causal clustering) and Vector storage engines (pgvector on PostgreSQL / AWS/GCP managed storage). Engineer high-throughput index structures, cosine similarity vector indexes, and query optimizations for sub-second responses.
  • SDLC Context Graph & Lineage Pipelines: Build automated ingestion pipelines to parse Git repositories, ASTs, Jira issue links, Apache Avro schemas, and CI/CD metadata into a unified enterprise knowledge graph. 
  • GraphRAG Orchestration & Agentic Search: Connect distributed pipeline engines to hydrate hybrid retrievers (combining structured SQL, Cypher graph traversals, and dense vector embeddings) for AI-driven developer workflows and autonomous coding agents.
  • Cyclic Agent Safeguards & Governance: Configure circuit breakers, confidence scoring thresholds, and step-limit constraints to restrict autonomous cyclic agent execution, protect token budgets, and prevent runaway execution loops.
  • Prompts-as-Code & Enterprise LLM Gateway Integration: Integrate microservices and knowledge stores with the central Enterprise AI Gateway, maintaining version-controlled system prompt structures inside localized .ai/ spoke directories while adhering to DLP PII scrubbing rules and token rate limits.
  • High Availability & FinOps: Implement automated failover, backup restoration, and multi-cloud storage tier cost controls across AWS and GCP environments.


We are excited if you have (Required Technical Expertise):

  • Graph Databases: Deep operational and development experience with Neo4j (Cypher, APOC, causal clustering) or enterprise Knowledge Graphs.
  • Vector Search & RAG: Proven expertise with pgvector (PostgreSQL), embeddings management, hybrid search techniques, and framework integrations (LangChain, LlamaIndex, or custom RAG pipelines).
  • Database Administration & Cloud Storage: Hands-on experience managing relational (PostgreSQL) and graph databases across AWS and GCP cloud environments.
  • Data Pipelining & Streaming: Proficiency in consuming Apache Avro payloads, streaming Kafka events (AWS MSK), and parsing structured/unstructured code and JSON artifacts.
  • Agentic AI & Prompt Engineering: Practical understanding of Prompts-as-Code patterns, few-shot prompt optimization, and agent tool specification.


You may also have:

  • Experience with Infrastructure-as-Code (Terraform) primitives, Kubernetes (EKS/GKE), Docker, and pull-based GitOps workflows.
  • Exposure to HashiCorp Vault Transit encryption, OIDC keyless authentication, and zero-trust workload identities.
  • Familiarity with OpenTelemetry (OTel) instrumentation for tracking vector search query latencies and LLM inference performance in Datadog or Grafana.

What you can expect from us:

  • Generous PTO Policy 

  • Support work life balance with Unplugged Days

  • Flexible WFH Policy 

  • Mental & Physical Wellness programs 

  • Phone and Internet Reimbursement program 

  • Access to Continued Career Development 

  • Comprehensive Benefits and Competitive Packages 

  • Paid Volunteer Time

  • Employee Resource Groups

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