Landly

Landly is an AI-powered land intelligence platform that helps investors, developers, brokers, and buyers discover, analyze, and evaluate land opportunities across Brazil. By combining geospatial intelligence, property data, and AI-driven insights, the platform enables users to make faster, smarter, and more informed real estate investment decisions.

Landly

Project Overview

Landly is an advanced AI-powered land intelligence platform designed to simplify the process of discovering and evaluating land opportunities across Brazil. Built for investors, real estate developers, brokers, and property buyers, the platform combines geospatial data, property records, and AI-driven analytics to provide comprehensive insights into land parcels and their investment potential.
Users can search properties using powerful location-based filters, perform proximity and neighborhood analysis, explore detailed land information, and assess nearby infrastructure, points of interest, and market opportunities. By integrating data from multiple trusted sources, Landly delivers accurate, real-time intelligence that supports confident decision-making throughout the property acquisition process. Its intuitive interface, interactive maps, and intelligent search capabilities enable users to identify high-potential land opportunities quickly, making land research and investment more efficient, reliable, and data-driven.

Industry

Real Estate | Property Analytics

Project Type

Land Intelligence | Property Analytics Platform

Platforms

Web Application

Business Type

B2C

Duration

3M

Region

Brazil

TOOLS & PLATFORM
Figma Figma Java Java Spring Boot Spring Boot MySQL MySQL ReactJS ReactJS NextJS NextJS Tailwind CSS Tailwind CSS  Google Maps API Google Maps API Asaas Payment Gateway Asaas Payment Gateway GitHub GitHub Vultr Cloud Server Vultr Cloud Server Figma Figma Java Java Spring Boot Spring Boot MySQL MySQL ReactJS ReactJS NextJS NextJS Tailwind CSS Tailwind CSS  Google Maps API Google Maps API Asaas Payment Gateway Asaas Payment Gateway GitHub GitHub Vultr Cloud Server Vultr Cloud Server

Tech Specification

Backend
Built using Java 17, Spring Boot, Spring Data JPA, Hibernate, and REST APIs to deliver a secure, scalable, and high-performance backend architecture.
Frontend
Developed with React.js, Next.js, and Tailwind CSS to provide a fast, responsive, and modern user interface.
Database
Utilized MariaDB for reliable, high-performance data storage and efficient management of property and user information.
AI Integration
Integrated Gemini AI to power natural language property searches and generate enhanced, AI-driven property descriptions.
Maps & Geospatial Services
Leveraged Google Maps API, Google Geocoding API, and Google Places API for interactive maps, location intelligence, and proximity analysis.
Payment Gateway
Integrated the Asaas Payment Gateway to enable secure and seamless online payment processing.
Data Processing
Implemented XML feed processing with asynchronous, multi-threaded import jobs for efficient handling of large-scale property data.
Hosting & Deployment
Hosted the platform on Vultr Cloud Server, ensuring reliable performance, scalability, and high availability.
Version Control
Used Git for source code management, collaborative development, and efficient version tracking.

Key Features

AI-Powered Land Search
Search for land using natural language queries powered by AI, making property discovery faster, smarter, and more intuitive.
Advanced Land Discovery
Find land opportunities with powerful search filters based on location, size, price, zoning, ownership, and other property attributes.
Geospatial Intelligence
Leverage interactive maps and location analytics to evaluate land based on geography, accessibility, and surrounding infrastructure.
Property Proximity Analysis
Analyze nearby schools, hospitals, highways, airports, and other points of interest to make informed investment decisions.
AI-Enhanced Property Descriptions
Generate clear, detailed, and engaging property descriptions using AI to improve listings and user experience.
Auction & Financing Search
Discover properties available through auctions or financing options with dedicated search and filtering capabilities.
Large-Scale Data Processing
Aggregate and process property data from multiple sources using efficient import pipelines for accurate and up-to-date information.
Google Maps Integration
Integrate Google Maps, Geocoding, and Places services to provide interactive mapping, address lookup, and location insights.
Subscription & Payment Management
Manage subscription plans and secure online payments through an integrated payment gateway.
Investment Insights & Analytics
Access AI-driven insights and property analytics to identify high-potential land opportunities and make data-driven investment decisions.

Challenges & Solutions

CHALLENGES
SOLUTIONS
1
Data Import & Processing

Efficiently processing and importing large volumes of land data from XML feeds without affecting application performance.

1
Optimized Data Processing

Implemented multithreading, asynchronous workflows, and batch processing to efficiently process large XML feeds while maintaining application performance.

2
AI Content Generation

Generating AI-powered property descriptions for thousands of listings while managing processing time and resource consumption.

2
AI Processing Optimization

Introduced batch-based AI content generation and optimized processing pipelines to reduce execution time and improve resource utilization.

3
Data Quality & Validation

Preventing duplicate records and handling inconsistent or incomplete property information received from multiple external sources.

3
Intelligent Data Validation

Added duplicate detection, address verification, and data validation mechanisms to ensure accurate and consistent property information.

4
Location Intelligence

Enriching property data with accurate geospatial information and proximity insights for nearby infrastructure and amenities.

4
Enhanced Location Intelligence

Integrated geocoding and location intelligence services to enrich properties with accurate coordinates and nearby points of interest.

5
Background Processing

Managing long-running import and AI processing tasks without impacting the responsiveness of the application.

5
Efficient Background Processing

Moved resource-intensive import and AI tasks to background jobs, ensuring the application remained responsive during heavy workloads.

6
Search Performance

Optimizing property search and filtering across a large dataset while maintaining fast response times.

6
Optimized Search & Filtering

Improved search performance through efficient database queries, indexing strategies, and optimized filtering algorithms for large property datasets.

CHALLENGES
1
Data Import & Processing

Efficiently processing and importing large volumes of land data from XML feeds without affecting application performance.

2
AI Content Generation

Generating AI-powered property descriptions for thousands of listings while managing processing time and resource consumption.

3
Data Quality & Validation

Preventing duplicate records and handling inconsistent or incomplete property information received from multiple external sources.

4
Location Intelligence

Enriching property data with accurate geospatial information and proximity insights for nearby infrastructure and amenities.

5
Background Processing

Managing long-running import and AI processing tasks without impacting the responsiveness of the application.

6
Search Performance

Optimizing property search and filtering across a large dataset while maintaining fast response times.

SOLUTIONS
1
Optimized Data Processing

Implemented multithreading, asynchronous workflows, and batch processing to efficiently process large XML feeds while maintaining application performance.

2
AI Processing Optimization

Introduced batch-based AI content generation and optimized processing pipelines to reduce execution time and improve resource utilization.

3
Intelligent Data Validation

Added duplicate detection, address verification, and data validation mechanisms to ensure accurate and consistent property information.

4
Enhanced Location Intelligence

Integrated geocoding and location intelligence services to enrich properties with accurate coordinates and nearby points of interest.

5
Efficient Background Processing

Moved resource-intensive import and AI tasks to background jobs, ensuring the application remained responsive during heavy workloads.

6
Optimized Search & Filtering

Improved search performance through efficient database queries, indexing strategies, and optimized filtering algorithms for large property datasets.

Results & Impact

Built a scalable land intelligence platform capable of processing and managing large volumes of property data from multiple sources.

Improved land discovery through AI-powered search, advanced filtering, and intelligent location-based property analysis.

Enhanced property evaluation with geospatial intelligence, proximity insights, and enriched land information for better decision-making.

Reduced property onboarding time by automating data import, validation, and AI-assisted property description generation.

Empowered investors, developers, brokers, and buyers to make faster, more informed, and data-driven land investment decisions.

Delivered a centralized platform that seamlessly combines property data, location intelligence, AI insights, and analytics into a unified user experience.

Platform Snapshots

Landly

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