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Data / Context Engineer

Glint Tech Solutions LLC
Posted 14 days ago, valid for 18 days
Location

Arlington, TX, US

Salary

Competitive

Contract type

Full Time

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Sonic Summary

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  • The position of Data / Context Engineer is available at Glint Tech Solutions, a women-owned IT staffing firm, for a remote role with a leading multinational telecommunications client.
  • Candidates should have 4-6 years of hands-on experience in retrieval and vector store engineering, specifically within a production environment.
  • The role involves architecting a knowledge base system to enhance decision-making across 12 regions, requiring expertise in multi-tenant retrieval systems and embedding model evaluation.
  • Key responsibilities include implementing a multi-regional KB architecture, building ingestion pipelines, and ensuring KB integrity and health reporting.
  • The salary for this position is competitive, reflecting the high visibility and impact of the role in a nationwide operation.

Job Title: Data / Context Engineer

Location: Remote

Company Overview
Glint Tech Solutions is a women-owned, global IT staffing and recruiting firm supporting enterprise clients across the USA and Canada.

Project Description
A leading enterprise client, a multinational telecommunications technology company, is seeking a Data / Context Engineer to play a pivotal role in shaping how knowledge flows across a massive, multi-region operation. This is a high-visibility opportunity to architect and scale a knowledge base (KB) system that will directly power decision-making across 12 regions and beyond. The role sits at the intersection of AI infrastructure, data engineering, and real-world business impact, with contributions visible across a nationwide operation from day one.

Key Responsibilities

  • Sign and implement the multi-regional KB architecture in P1 alongside SA
  • Seed the KB across 12 regions during P2 (cohort 1 wk1, cohort 2 wk2, cohort 3 wk3 of July)
  • Build and operate the ingestion pipeline (machine-readable regional standards embeddings retrievable patterns) with sampled human approval gate
  • Add MOD-specific retrievable context as regional overlays during Sep-Oct
  • Own KB integrity checks, retrieval evaluation, and weekly health reporting

Mandatory Skills

  • 4-6 years of hands-on RAG / retrieval / vector store engineering in production
  • Experience building a multi-tenant or multi-region retrieval architecture with overlay / inheritance semantics, not just "one big index"
  • Vertex AI Vector Search or transferable depth (Pinecone, Weaviate, pgvector with strong tenancy, OpenSearch hybrid)
  • Embedding model evaluation discipline — retrieval quality metrics (recall@k, precision@k, MRR), not vibes
  • Python; familiar with structured-doc ingestion pipelines (PDF / XML / spreadsheet chunked, normalized, embedded)

Nice-to-Have Skills

  • Designed a promotion path between draft/approved/retired patterns with audit log
  • Sampled human-review workflows integrated with the writeback path
  • RF / telecom standards format familiarity



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