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Ishuin/README.md

Hi, I'm Ishu Kumar πŸ‘‹

Senior Backend & AI Systems Engineer

I build production backend systems and AI-native products with Python, cloud infrastructure, MCP, RAG, and agentic workflows.

Seven years of Python engineering across SaaS, distributed systems, cloud platforms, and AI applications. I care about the parts that make AI useful in production: reliable APIs, measurable retrieval quality, observability, evaluation, cost control, and safe deployment.

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Proof of Work

  • 516 automated tests in CI for Zocept: 358 Playwright end-to-end tests and 158 Vitest unit tests
  • 213 credit cards supported by Zocept, a live AI-powered rewards optimization product
  • MCP implementation merged upstream in Oracle AI Optimizer
  • Built both sides of an MCP integration: a vector-search MCP server and an MCP-enabled AI Optimizer client/server
  • Led architecture for a multi-tenant Azure SaaS platform and mentored a team of 6 engineers
  • Reduced downtime incidents by 40% and incident response time by 25% through architecture and observability improvements
  • Designed cloud infrastructure across AWS, Azure, GCP, VMware, and OpenStack
  • Built real-time data synchronization serving 50,000+ users
  • Automated manual infrastructure workflows, reducing processing time by 90%
  • Reduced large-scale analytics runtime by 40% with PySpark and Amazon Redshift

What I Build

AI Systems

  • MCP servers and clients
  • Retrieval-augmented generation pipelines
  • Multi-agent orchestration and verification loops
  • Retrieval evaluation and golden datasets
  • Local-first AI systems with Ollama and vector databases
  • AI application APIs with FastAPI
  • Model routing, prompt versioning, and cost-aware workflows

Backend and Platform Systems

  • Python services with FastAPI, Django, and Django REST Framework
  • Event-driven and serverless architectures
  • Multi-tenant SaaS platforms
  • Distributed systems and real-time communication
  • PostgreSQL, Redis, MySQL, SQLite, and Redshift
  • CI/CD, infrastructure as code, and production observability

Selected Projects

AI-powered credit card rewards optimizer for Indian users.

  • Built and operate the product independently from MVP to production
  • Covers 213 credit cards across major Indian banks
  • 516 automated tests run in CI on every deployment
  • 358 Playwright end-to-end tests and 158 Vitest unit tests
  • Production Lighthouse scores: 90/100/100/100
  • FastAPI backend, React frontend, Supabase, Razorpay, and Vercel

Open-source MCP implementation contributed during my work at Oracle.

  • Implemented MCP server and client capabilities
  • Built a vector-search MCP server
  • Exposed the AI Optimizer as an MCP server
  • Enabled the Optimizer to consume external MCP capabilities as a client
  • Added vector-store documentation, disclaimers, and test coverage

VaultMind

Privacy-first, local-first AI knowledge product.

  • Ingests personal data such as chat exports, bookmarks, and email
  • Uses Ollama and local vector search
  • Works with internet access disabled
  • Current hardening includes retrieval evaluation, role-based access control, and agent-level observability

Engineering Experience

Technical Lead

  • Architected a multi-tenant e-commerce SaaS on Azure using event-driven serverless patterns
  • Reduced downtime incidents by 40%
  • Established Grafana Loki observability standards
  • Reduced incident response time by 25%
  • Mentored a squad of 6 engineers from MVP toward production

Senior Software Engineer

  • Built SaaS features with Python, Django, DRF, and PostgreSQL
  • Improved core system stability by 30%
  • Designed infrastructure with Terraform and CloudFormation across multiple cloud and virtualization platforms
  • Supported a 25% increase in deployment load capacity
  • Partnered directly with product teams to turn ambiguous requirements into maintainable systems

Earlier Engineering Work

  • Automated approximately 50% of manual infrastructure tasks with Python and VB scripts
  • Reduced processing time for those workflows by 90%
  • Reduced analytics runtime by 40% with PySpark and Amazon Redshift
  • Built real-time WebSocket infrastructure for live synchronization across 50,000+ users

Core Stack

Languages: Python, JavaScript, C++, C, PHP, SQL, Bash

AI: MCP, RAG, agentic workflows, multi-agent orchestration, evaluation pipelines, Ollama, LiteLLM, Anthropic, OpenAI, Gemini, Hugging Face

Backend: FastAPI, Django, Django REST Framework, React, PostgreSQL, Redis, MySQL, SQLite, Redshift

Cloud and Infrastructure: AWS, Azure, GCP, Kubernetes, Docker, Terraform, CloudFormation, VMware, OpenStack, CI/CD

Observability and Data: Grafana Loki, PySpark, vector databases, retrieval evaluation, distributed systems


Open To

  • Senior AI Engineer roles
  • Senior Backend Engineer roles
  • Forward-deployed and applied AI engineering roles
  • MCP, RAG, agentic systems, and AI platform consulting
  • Collaborating on practical open-source AI projects

πŸ› οΈ Core Stack

Python Django FastAPI Flask JavaScript C++ PostgreSQL MySQL Git Bash Linux Docker AWS Azure Google Cloud

πŸ€– AI Engineering

MCP RAG Agentic AI Ollama LiteLLM Vector Search AI Evaluation


πŸ“Š GitHub Stats

Ishu's GitHub stats ishuin's GitHub streak

GitHub commits graph

Top languages

🌐 Connect

GitHub GitHub: [github.com/Ishuin](https://github.com/Ishuin)

LinkedIn LinkedIn: [linkedin.com/in/ishukumars](https://www.linkedin.com/in/ishukumars)

Email Email: [ishu.kumars@gmail.com](mailto:ishu.kumars@gmail.com)

Website Product: [zocept.com](https://zocept.com/)

I build AI systems that are useful, observable, testable, and difficult to fool.

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