DevOps Projects in India
DevOps Projects in India
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1
Wahid Ali
pro
Flight Booking Platform
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19
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Mehul Sethia | Senseibles
pro
DepX: AI-Powered DevOps Copilot
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81
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Chaitanya Tyagi
pro
Implementing Kubernetes for Streamlined Application Deployment
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30
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Raj Pathak
pro
GPU Mining 4 Qubitcoin Custom Build CUDA NVIDIA GPU LINUX UBUNTU
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15
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Sandeep Acharya
ToDesktop - Web app to desktop app in minutes
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53
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Vikaskumar dane
🚀 Troubleshooting Critical Terraform Drift in AWS Production Project Description / Post Body: I recently encountered a critical CI/CD failure while deploying a serverless backend to a new AWS environment. The pipeline was paralyzed due to "Resource Drift"—a mismatch between the Terraform state file and the actual infrastructure. The Challenge: A manual "hotfix" in the AWS Console created "ghost resources" (Secrets) that Terraform couldn't see. This caused repeated deployment failures and blocked the staging environment. The Solution: Instead of tearing down the environment, I used the terraform import workflow to: Documented the full fix in my technical blog (Link below) https://shorturl.at/ZJR3g
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93
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Mehroz Ali Pasha
pro
A luxury hair-service brand built around style, not just cuts—because every client deserves the red-carpet look, every day. https://www.theblowoutbar.com.au
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163
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5
Abhiram Tinguria
Production AI Chat Platform Built & Deployed on Replit Autoscale
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3
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Saurav Hiremath
pro
Multiplayer Browser game
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84
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Himanshu Bansal
pro
PromoTix: Simplifying Influencer Marketing
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9
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Shailesh Rathod
Next.js Admin Dashboard – Scalable
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33
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Om Shukla
That makes total sense. A lot of portfolio platforms like Contra don't support LaTeX rendering, so those equations just end up looking like broken code. Here is the revised version with the math translated into clean, readable plain text so it formats perfectly on the site. AuraOps: The Autonomous Unified Release Authority 🚀🧠 Moving AI from "Assisting Developers" to "Making Production Decisions" Modern CI/CD pipelines are reactive. They lint, test, and warn—but the final decision still depends on a human. As DevOps complexity grows with security risks, compliance requirements, and sustainability concerns, developers are overwhelmed. We asked a simple question: What if the pipeline itself could decide whether code is safe to ship? That idea led to AuraOps—a multi-agent AI system integrated directly into GitLab Merge Requests that doesn’t just analyze code, but actively fixes it, verifies it, and makes the final release decision. 💡 How It Works: The Autonomous Pipeline AuraOps intercepts GitLab webhooks when a Merge Request is opened, extracts the code diff, and triggers a 3-phase autonomous pipeline powered by specialized AI agents. The Execution Flow: Phase 1 (Parallel): Security & Sustainability Analysis Phase 2 (Sequential): Validation & Risk Decision Phase 3 (Parallel): Compliance Checks & Deployment 🤖 The Multi-Agent AI System AuraOps orchestrates several distinct agents to handle the entire lifecycle: SecurityAgent: Detects vulnerabilities (SQLi, XSS, secrets), auto-remediates them by writing and committing patches, and re-validates its own fixes. GreenOpsAgent: Optimizes infrastructure using real-time carbon data and suggests lower-emission deployment regions. ValidationAgent: Runs the GitLab CI/CD pipeline to ensure AI-generated fixes didn’t break functionality, with graceful fallbacks if CI is down. ComplianceAgent: Audits code and deployment against SOC2, GDPR, and HIPAA requirements. DeployAgent: Builds and deploys the application to Google Cloud Run, selecting the greenest, most optimal region. RiskEngine (The Brain): The decision-making core that aggregates all signals into a single release scorecard and outputs a definitive APPROVE or BLOCK. 🧮 The RiskEngine Decision Model To confidently block or approve a release without human input, we engineered a weighted decision model to generate a final confidence score. The core confidence score combines three key weighted metrics: Security Score * Eco (Sustainability) Score * Validation Result The final AI decision function evaluates this combined score against a strict threshold. For example, if the total confidence score is 75% or higher, the release is securely shipped and marked as APPROVE. If it falls below that mark, the system automatically outputs a BLOCK decision to prevent risky deployments. 🧗♂️ Engineering Challenges Reliable Auto-Remediation: Detecting issues is easy; safely fixing them is not. We implemented multi-pass revalidation (up to 3 cycles) and auto-commits directly to GitLab. Failure Resilience: Real-world systems fail. We built AuraOps with graceful degradation—handling CI failures by safely skipping them, retrying API rate limits with exponential backoff, and bypassing missing configs without crashing. Sustainability as a Metric: Mapping cloud infrastructure to real-time carbon intensity APIs to quantify exact CO₂ savings. 🚀 The Final Output: The Release Scorecard Instead of overwhelming the developer with logs, AuraOps outputs a clean, aggregated scorecard directly in the MR containing: Security score & vulnerabilities auto-fixed Sustainability index & CO₂ emissions avoided Time saved via automation Final AI Decision + Confidence Percentage 💻 Built With AI Models: Gemini 2.5 Flash | Gemini 3.5 Pro | Claude 3.5 Sonnet Backend & Orchestration: Python | FastAPI | Uvicorn | Node.js | TypeScript Frontend & 3D Vis: React | Three.js (React Three Fiber) | CSS DevOps & Cloud: Docker | GitLab API & Webhooks | GitLab CI | Google Cloud Build | Google Cloud Run Try AuraOps : https://auraops-735853806237.europe-north1.run.app/dashboard
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119
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Sagar Gohil
Tourism Activities & Events Booking Platform
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15
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Hardik Paghdar
Intelligent B2B Marketplace for Agricultural Sourcing Wikifarmer needed a scalable, trust-driven digital platform to connect thousands of agricultural suppliers with large global buyers — eliminating the inefficiencies, price volatility, and quality uncertainty that plague traditional supply chains. I contributed to the end-to-end design and development of the platform, integrating AI-powered features to enhance sourcing intelligence — including smart supplier matching, dynamic pricing insights, and automated quality assurance workflows. The platform covers the full supply chain lifecycle: from harvest and packing to shipping, logistics, and final delivery. Key features built include a multi-category product marketplace (olive oil, fruits, vegetables), a 360° logistics management system, AI-assisted buyer-supplier negotiation tools, and a transparent transaction layer ensuring security and accountability for every order. The result is a high-performing B2B marketplace that has revolutionized agricultural sourcing for buyers and producers across Europe and beyond — reducing procurement costs, improving cash flow with net-30 financing, and delivering measurable gains in supply chain efficiency and product quality.
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Cypherox Technologies
Built an end-to-end CRM system that manages the complete customer and supplier journey, from inquiry through order fulfillment and delivery. The platform was designed for a large-scale organization and includes modules for inquiry tracking, opportunity management, logistics, and a container visualization tool with automated size and quantity calculations. Additionally, the CRM integrates seamlessly with Google Workspace for automated user provisioning and synchronization, and features multiple advanced workflow and operations enhancements.
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Mohamed Siraj
Super BI is an AI-powered autonomous Business Intelligence platform that turns raw data into interactive dashboards, charts, and insights using natural language—without requiring SQL, DAX, or complex BI expertise. It automatically cleans data, generates visualizations, and enables teams to collaborate through live, shareable dashboards. Built as a modern alternative to Power BI and Tableau, Super BI makes enterprise analytics faster, simpler, and accessible to everyone.
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