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RAG Architect

Role overview

Qualifications

  • 6 to 10 years of enterprise data engineering, database design, or search engine engineering experience
  • 3+ years of dedicated experience designing production-grade Retrieval-Augmented Generation (RAG) architectures
  • Strong technical mastery of Python, vector databases, text embedding models, open-source orchestration tools, and SQL
  • Mandatory certification: Professional Cloud Data/Database Engineer or Specialty Analytics credential from a major cloud vendor

Responsibilities

  • Architect end-to-end advanced Retrieval-Augmented Generation (RAG) pipelines
  • Optimize context window utilization patterns and design smart parent-child chunking models
  • Build high-performance re-ranking layers using machine learning cross-encoders
  • Implement automated semantic caching architectures to capture recurring semantic queries

Key facts

  • Remote from: Anywhere
  • Full time
  • Mid-level (2-5 years)
  • Architect (Building)
  • English

Hard skills

About the company

FyerX - Your Trusted Marketing Partner logo

FyerX - Your Trusted Marketing Partner

Digital Marketing & SEO Agencies

We are Digital Marketers with one primary focus. We help you realize improved outcomes from digital marketing strategies and services. Your success with us will be realized in large steps or in small incremental steps. FyerX, Bangalore is run by a passionate team of marketing experts who have devoted their time and expertise to make your business grow in the online world in this technology age. We fuel the growth of purpose driven brands through strategy activation, design empowerment, and market adoption. From cultivating new ideas to connecting the dots for customers or users, these are our core principles. Leverage our expertise to: Improve global online reach & visibility Strengthen local visibility Develop integrated marketing plans Drive growth for your brand online Improve and enhance your online reputation Measure and optimize digital efforts Craft effective digital campaigns Build your digital strategy

Company details

IndustryDigital Marketing & SEO Agencies
Company size11 - 50

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Job description

This is a remote position.

RAG Architect

Job Details
  • Employment Type: Contract
  • Work Mode: Remote
  • Location: Offshore
  • Total Experience Required: 6 to 10 years
  • Relevant Experience Required: 3+ years of dedicated experience designing production-grade Retrieval-Augmented Generation (RAG) architectures and optimizing LLM token throughput
  • Mandatory Certification: Google Cloud Certified Professional Cloud Database Engineer, AWS Certified Data Analytics - Specialty, or Databricks Certified Data Engineer Professional

Job Summary
We are seeking an experienced Context Window Optimization / RAG Architect to take full ownership of our enterprise generative AI retrieval performance, accuracy, and operational cost metrics. The ideal candidate will design high-throughput knowledge retrieval systems, optimize semantic context parsing, build custom re-ranking pipelines, and engineer caching grids to deliver data-grounded AI responses with minimal latency and maximum token efficiency.

Key Responsibilities
  • Architect end-to-end advanced Retrieval-Augmented Generation (RAG) pipelines, building structures for document parsing, semantic metadata enrichment, and multi-vector lookups.
  • Optimize context window utilization patterns, designing smart parent-child chunking models, sentence-window retrievals, and sliding window strategies to eliminate irrelevant text tokens.
  • Build high-performance re-ranking layers, deploying machine learning cross-encoders (e.g., Cohere Rerank, BGE-Reranker) to score retrieved documents before feeding them into the LLM context pool.
  • Implement automated semantic caching architectures, utilizing caching layers (e.g., GPTCache) to capture recurring semantic queries, reducing API token expenditures and response latencies.
  • Establish automated data chunking pipelines, configuring ingestion routines to cleanly parse semi-structured and unstructured formats (PDFs, corporate wikis, SQL outputs) into clean vector targets.
  • Govern vector similarity spaces, fine-tuning hybrid search algorithms that cleanly combine dense semantic embeddings with sparse keyword token indexes (BM25).
  • Audit context-level hallucination rates and accuracy logs, tracking precision metrics, retrieval recall bounds, and processing speeds to systematically eliminate incorrect model generations.



Requirements

  • 6 to 10 years of enterprise data engineering, database design, or search engine engineering experience, with 3+ dedicated years actively scaling context retrieval loops for live LLM applications.
  • Strong technical mastery of Python, vector databases (Pinecone, Milvus, Weaviate), text embedding models, open-source orchestration tools (LlamaIndex, LangChain), and SQL.
  • Deep structural understanding of context window limitations ("lost in the middle" phenomenon), multi-modal token dynamics, network data transfer speeds, and cloud memory spaces.
  • Mandatory certification: Professional Cloud Data/Database Engineer or Specialty Analytics credential from a major cloud vendor (AWS/GCP/Azure).

Preferred Qualifications
  • Prior experience implementing Graph RAG frameworks utilizing native knowledge graphs (e.g., Neo4j) to map complex corporate data relationship networks.
  • Familiarity with fine-tuning open-source text embedding models specifically optimized for industry-specific terminology or legacy product schemas.



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Marcus Rivera

Chief Revenue Officer

m.rivera@company.com
linkedin.com/in/marcusrivera
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