Discover Our

Machine Learning & Data Analytics

Unlock the Power of Data. Predict. Automate. Grow.

At Eco Green Developers, we help businesses transform raw data into actionable intelligence and build smart systems that learn, adapt, and improve over time. Whether you’re aiming to make better decisions, automate processes, or deliver personalized experiences—our Machine Learning and Data Analytics solutions have you covered.

Predictive Modeling

Recommendation Engines

Natural Language Processing (NLP)

ML Model Development

Understand your business and define success metrics

Whether you’re aiming to make better decisions, automate processes, or deliver personalized experiences—our Machine Learning and Data Analytics solutions have you covered. We build intelligent systems that learn from your data and evolve with your business.

Data Analytics & Business Intelligence

Services We Offer

Turn messy data into meaningful dashboards, reports, and real-time insights.

Data Collection & Cleaning

Exploratory Data Analysis (EDA)

Data Collection & Cleaning

KPI Dashboards & Reports

Customer & Market Segmentation

Real-time Analytics

Technologies We Use

At Eco Green Developers, we leverage a powerful combination of industry-standard tools, platforms, and programming languages to deliver robust Machine Learning and Data Analytics solutions. Our team is proficient in Python, R, SQL, and key libraries like Pandas, NumPy, Scikit-learn, TensorFlow, and PyTorch to develop and deploy intelligent models. For data visualization and reporting, we use Power BI, Tableau, Matplotlib, and Google Data Studio, enabling clear, interactive dashboards that translate raw data into strategic insight.

Projects We’ve Built

Professional  solutions tailored to each client’s unique vision.

 

Plant Guard

PlantGuard is an intelligent mobile-based plant disease detection and treatment system developed to assist farmers and gardeners with accurate, fast, and actionable plant health diagnosis using deep learning. The system leverages a ResNet-18 deep learning model trained in PyTorch on a well-curated multi-class dataset (with up to 8 disease classes per crop) to identify diseases from leaf images.

The model achieves strong performance even on modest datasets (≈500 images per class), and is optimized for real-world use and eventual deployment on mobile devices via TensorFlow Lite (TFLite) conversion.

Users interact with PlantGuard through an Android application written in Kotlin, where they can either capture a leaf photo with the device camera or select an image from the gallery. Once an image is submitted, the system classifies the leaf into one of the supported disease categories (e.g., for cotton, maze, potato, etc.) and returns a clear diagnosis.

Beyond detection, PlantGuard provides a comprehensive treatment recommendation system backed by a cloud-hosted database (managed via Supabase). For each disease class, users receive chemical treatment guidance (e.g., recommended fungicides or pesticides with proper use instructions), bridging the gap between AI diagnosis and actionable next steps.

PlantGuard’s goal is to reduce crop losses, improve agricultural productivity, and empower smallholder farmers with AI-driven plant health insights — all from the convenience of a smartphone.

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