Graph AI Platform Engineer - Specialist, different skill tree entirely

Argyllinfotech

  • Dallas, TX
  • 7 days ago

    Highlights

    Good fit: a graph database/data engineer with ML leanings, or a research-adjacent engineer who's worked on knowledge graphs - much smaller, more specialized talent pool than the other two roles. Ontology/semantic modeling experience (RDF, OWL) - this is closer to a knowledge engineering skillset than typical app dev.

    Numbers & Facts

    LocationDallas, TX

    Description

    Job Title: Graph AI Platform Engineer - Specialist, different skill tree entirely

    Location: Dallas, TX

    Client: Bank Of America
    Look for: this is not a GenAI generalist role - don't try to fill it with the same candidate pool as the other two.

    search for "Neo4j," "TigerGraph," "knowledge graph," "GNN" - treat as a distinct niche search, not a GenAI keyword search

    • Deep graph database expertise: Neo4j and/or TigerGraph in production, GSQL or equivalent query languages
    • Graph ML background: GNNs, DGL or PyTorch Geometric, graph embeddings/representation learning
    • Ontology/semantic modeling experience (RDF, OWL) - this is closer to a knowledge engineering skillset than typical app dev
    • GraphRAG exposure is a bonus, not a requirement - the graph expertise is the hard-to-find part; GenAI integration can be taught
    • 8+ years signals they want someone senior enough to set architecture/standards, likely with prior work in fraud/risk/cybersecurity or knowledge management domains where graphs are common
    • Good fit: a graph database/data engineer with ML leanings, or a research-adjacent engineer who's worked on knowledge graphs - much smaller, more specialized talent pool than the other two roles

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