Askitect

Generic AI tools left homeowners with inaccurate property answers, so a FAISS and LangChain RAG pipeline trained on real construction knowledge was built, delivering 60% faster resolution with 2x accuracy improvement.

  • 60%

    faster query resolution

  • 2x

    AI accuracy improvement via RAG validation

  • 99%

    user satisfaction rate at launch

  • 99%

    of queries anchored to real property challenges

Askitect is a USA-based architecture and construction technology firm. They solve real-world pain points for homeowners, DIYers, and realtors by offering an AI-driven property assessment tool. The platform enables users to simply upload a property photo and receive expert-level insights in minutes.

  • Industry

    AI SaaS (Construction / Architecture)

  • Client Type

    B2C / Pro-sumer

  • Market

    USA

  • Engagement Duration

    6 months

  • Technologies

    Python Django React.js LangChain OpenAI Models Celery FAISS AWS

  • Project Type

    AI Implementation & Data Engineering

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planet-sec-title-arrow Key Features Delivered

  • Photo-based AI diagnosis engine for instant property assessment
  • FAISS and LangChain RAG pipeline with OpenAI for domain accuracy
  • Curated construction knowledge base for repair and assessment data
  • User dashboard with photo upload, query tracking and source attribution
  • Feedback loop continuously improving AI response relevance and precision
  • Scalable AWS deployment with Django, React.js and Celery task queue

planet-sec-title-arrow Business Challenge

Existing AI tools lacked construction-domain accuracy, returned generic responses to vague property queries, and had no scalable architecture to serve homeowners, DIYers and realtors across RAG pipelines, AI models and cloud infrastructure simultaneously.

planet-sec-title-arrow Objectives

  • Replace generic AI responses with construction-domain accuracy
  • Enable photo-based property diagnosis without expert intervention
  • Scale platform across three distinct user types
  • Integrate RAG, AI models, and cloud infrastructure

planet-sec-title-arrow Our Approach

Audit → Strategy → Development → Optimization → Growth

We audited failures in generic AI tools, identified domain gaps causing inaccurate outputs, then built a specialized construction knowledge base and chose FAISS and Celery to deliver expert-level property answers with domain accuracy and scalability.

planet-sec-title-arrow Our Solution

Our AI Engineering team built a construction-specific intelligence platform for domain-trained precision.

  • Curated specialized construction knowledge base
  • Engineered FAISS-LangChain RAG pipeline for accuracy
  • Built photo diagnosis flow with feedback refinement
  • Deployed full AWS stack via Django and Celery

planet-sec-title-arrow Results & Impact

Askitect launched with a 99% satisfaction rate, 60% faster query resolution, and 2x the accuracy of generic tools, with every response anchored in real construction knowledge, transforming vague homeowner queries into expert-level property assessments within seconds.

Construction domain knowledge base engineering experience

It’s been a pleasure to have worked with Bytes Technolab. I am consistently impressed by their ability to execute tasks as requested. They are quick learners who tackle business challenges with effective software solutions. I really appreciate their timely responses and out-of-the-box recommendations.

Travis-C

Travis C

Head of Marketing, Ragnar

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