Proven AI In Production
AI Case Studies &
Enterprise AI
Success Stories
See how SDLC Corp puts AI into production across enterprise AI, document AI, voice AI, machine learning, computer vision, AI + ERP, automation and decision intelligence. Every story shows the business problem, the system we built and the documented outcome.
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Featured AI Case Studies
Our Strongest
AI Proof
A curated set of the AI implementations that best show what we build, from the business problem and the solution to the outcome documented on each case study page.
Home Case Studies Pulastya AI Call Intake AI Call Intake and Intelligent Routing with
Case study · Transworld Logistics Transworld Logistics Modernized Logistics Operations With ERP and AI
Real Estate Software Case Study Best Offer Package Platform Real Estate Workflow & Offer
Home › Case Studies › Ease Pet Vet AI Chatbot, CRM & Website AI
All AI Case Studies
Every AI Project,
One Library
Browse the full library of published AI case studies. New AI case studies appear here automatically as soon as they go live.
Home Case Studies Pulastya AI Call Intake AI Call Intake and Intelligent Routing with
Case study · Transworld Logistics Transworld Logistics Modernized Logistics Operations With ERP and AI
Real Estate Software Case Study Best Offer Package Platform Real Estate Workflow & Offer
Home › Case Studies › Ease Pet Vet AI Chatbot, CRM & Website AI
Home ▸ Case Studies ▸ MamaApp AR VR Agriculture Mapping Platform AgriTech Case Study
Case Study Praxis AI LMS for Fabeminds Digitizing Mental Wellness and Counselor Training Programs
Case Study How QuantusTechnik Improved Sales and Machine Insights With AI QuantusTechnik managed website
Case Study How InnCentral Simplified Hotel Operations A hotel team needed one system to
Case Study How Data AI Ninja Improved Finance Document Processing A finance team was
Home › Case Studies › Ease Pet Vet AI Chatbot, CRM & Website AI
Home Case Studies Pulastya AI Call Intake AI Call Intake and Intelligent Routing with
Case Study How Data AI Ninja Improved Finance Document Processing A finance team was
Home Case Studies DYD Interior Simulation Platform DYD Case StudyAI Interior Design Simulation Platform
Case Study : AI Document Processing for Food Industry “Revolutionizing Efficiency: AI-Driven Document Processing
CASE STUDY: LOGISTICS AI DOCUMENT PROCESSING FOR TRANSWORLD LOGISTICS Document Processing for Transworld Revolutionizing
AI Intelligent Document Processing Case Studies Discover SDLC Corp’s AI intelligent document processing case
AI Case Study · Fraud & Anomaly Detection Fraud Detection AI Reduces Game Cheating
AI Case Study · Computer Vision & Machine Learning AI Defect Detection Hits 96%
Case study · Transworld Logistics Transworld Logistics Modernized Logistics Operations With ERP and AI
ODOO AI ASSISTANT CASE STUDY Odoo AI Assistant for Smarter Odoo ERP Data Access
Case Study · Odoo ERP Implementation · Logistics How Transworld cut document processing by
Real Estate Software Case Study Best Offer Package Platform Real Estate Workflow & Offer
Case Study How QuantusTechnik Improved Sales and Machine Insights With AI QuantusTechnik managed website
Case Study How InnCentral Simplified Hotel Operations A hotel team needed one system to
Case Study · Workflow Automation Automated Email Invoice Processing System The client needed an
Capabilities
AI Capabilities
Proven In Practice
Each case study above is built on a service we deliver commercially. Follow the capability that matches your use case to see how we would scope and build it.
AI Development Services
End-to-end AI product engineering, from data and models through to production deployment.
Enterprise AI Development Services
AI embedded into enterprise workflows, systems and governance.
Generative AI Development Services
LLM-powered assistants and knowledge systems built to run in production.
Machine Learning Development Services
Prediction, classification and recommendation models tied to business decisions.
Computer Vision Development Services
Image and video analysis for visual inspection, detection and monitoring.
AI Integration & Implementation Services
AI connected to ERP, Odoo and enterprise transaction workflows.
Decision Intelligence Solutions
Forecasting, operational analytics and decision-support workflows.
Explore All AI Services
See every AI capability SDLC Corp delivers.
FAQ
AI Case Study Questions,
Answered Plainly
What buyers ask most before committing to an AI project: proof, cost, timeline, data, security and ownership. Straight answers drawn from how we deliver.
Each case study sets out the business problem, the AI system we built and the outcome documented on that page. They span enterprise AI, generative AI, voice AI, document AI, machine learning, computer vision, AI + ERP, automation and decision intelligence, so you can judge the work against your own use case instead of relying on a generic claim.
The library is built to show AI running in production. A demo and a production system are judged differently: production has to work on real data, connect to the systems you already use and be monitored after launch. If you want to know how any one of these projects was scoped, integrated and taken live, tell us which one in the contact form and we will walk you through it.
Yes. Use the Browse by Capability and Browse by Industry filters above to narrow the library. The industry filters cover logistics and supply chain, manufacturing, financial services, healthcare, hospitality, real estate and enterprise ERP, and new case studies appear automatically as they are published. If your exact scenario is not listed, describe your workflow and we will say plainly whether we have delivered something close to it.
It depends on the use case, how ready your data is, how many systems the AI must connect to and how much it will be used once live. After a short discovery we give you a breakdown that separates build effort, infrastructure and model usage, and ongoing support, so the full cost is visible before you commit. For most teams we recommend a focused first release that proves value before the scope grows.
A narrow, well-defined use case can reach a working first version in weeks. Systems that touch messy data, several enterprise platforms or regulated workflows take longer and are delivered in stages, each with its own milestone. We prefer to give you a phased plan after we understand the problem, not a number on the first call.
No. Reviewing your data is part of the early work: where it lives (ERP, CRM, documents, call recordings, images), how complete and consistent it is, and who can access it. If the data needs cleanup first, or a different approach would fit better, we tell you at the start, before any build budget is spent.
Yes. AI + ERP is one of our core capability areas, covering ERP, Odoo and enterprise transaction workflows. The AI is connected to the systems your team already works in, so people keep using familiar tools instead of switching to a separate one. See our AI integration and implementation services for how this works.
We agree the rules at the start: where your data is stored, who can access it, what (if anything) is sent to third-party models, and which regulations apply to your industry. For sensitive workloads such as healthcare or financial services, the system can be designed to work within your own cloud, region and access policies. Share your requirements early and we will build to them.
We define what success means with you before building, using a measure your team already cares about, such as processing time, cost per transaction, accuracy or forecast error, set against today as a baseline. The AI is tested on real examples from your data before launch, people stay in the loop where errors are costly, and performance is monitored after go-live. Case study results are the documented outcome for that project, so treat them as evidence of how we work and not a guarantee for yours.
Your data remains yours. Ownership of the delivered code, custom models and documentation, and the licensing of any third-party components, is agreed in writing before work starts, so there are no surprises later. Ask us for these terms up front.
AI systems need attention after go-live because data, users and business rules change. We scope post-launch support with you as part of the plan, covering monitoring, tuning, model or prompt updates and new features. The arrangement can range from a clean handover to your team to ongoing support from ours.
Tell us the workflow, the data and the outcome you need using the contact form. We will map the right AI approach, architecture and delivery plan, then build it to run in production. It helps to bring a short description of the process, a few sample documents or records, the systems involved and the result you want to measure.
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