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wdevelper11-cloud/README.md

Parth Rebhe

Applied AI & Full-Stack AI builder focused on AI agent systems, LLM evaluation, Supabase-backed product architecture, and deployed MVPs.

India | Open to Remote Global Roles

About

I am a B.Tech Information Technology student, graduating in 2028, who builds Applied AI and Full-Stack AI projects. My strongest proof of work is EvalGate and AIMS, two deployed, Supabase-backed MVPs. I focus on evaluation and governance workflows, project-scoped data, Row Level Security, dashboards, and practical product implementation. I am targeting Applied AI, AI Agent Engineering, AI Evaluation, Full-Stack AI, and startup engineering opportunities.

Featured Projects

EvalGate — AI Agent Evaluation & Release Readiness Harness

A deterministic evaluation platform for testing prompt and AI-agent changes and turning persisted results into clear release decisions.

Live Demo · GitHub Profile

Technical highlights

  • Reusable test case and prompt version registries
  • Deterministic evaluation runner with category-aware and priority-aware scoring
  • Ship, Needs Review, or Block release decisions
  • Safety failure override, persisted evaluation runs and results, reports, and audit timeline
  • Project/workspace scoping with Supabase Auth, Postgres, and Row Level Security

MVP boundary: EvalGate intentionally uses deterministic evaluation to demonstrate evaluation architecture, scoring, release gating, and product thinking. It does not call AI providers or use agent frameworks, RAG, embeddings, or vector databases.

AIMS — AI Agent Operations Control Plane

A control plane for organizing AI-agent operations, governance records, execution evidence, risk monitoring, and audit activity.

Live Demo · GitHub Profile

Technical highlights

  • Agent registry and tool governance
  • Knowledge-source tracking and execution evidence
  • Run monitoring, operational risk views, dashboard metrics, and audit timeline
  • Safe error handling and project-scoped Supabase queries
  • Project/workspace scoping with Supabase Auth, Postgres, and Row Level Security

MVP boundary: AIMS is a control plane, not an agent runtime. It does not execute agents, call AI providers, invoke tools automatically, or use RAG or embeddings.

Technical Focus

  • AI agent systems
  • LLM evaluation and release readiness
  • Prompt testing and deterministic scoring
  • Supabase Auth, Postgres, and Row Level Security
  • Next.js App Router and TypeScript
  • Full-stack MVP implementation
  • Product thinking and system design basics

Tech Stack

  • Languages: TypeScript, Python, C, C++, SQL basics
  • Frontend: Next.js App Router, React, Tailwind CSS
  • Backend / Database: Supabase Auth, Supabase Postgres, Row Level Security, PostgreSQL basics
  • AI / LLM Systems: Prompt writing, AI engineering fundamentals, AI automation concepts, deterministic evaluation workflows
  • Tools / Deployment: Vercel, GitHub, GitHub Codespaces, NotebookLM, Claude, ChatGPT, Codex-assisted development

What I’m Looking For

I am open to Applied AI Engineer, AI Agent Engineer, AI Evaluation Engineer, Full-Stack AI, AI Product Engineer, Founding Engineer, and AI Implementation Engineer internships, as well as AI residency or accelerator programs. I am also interested in junior, apprentice, or contractor roles where my project experience is a strong fit.

Currently building and applying for Applied AI, AI Agent Engineering, and Full-Stack AI opportunities.

Contact

Popular repositories Loading

  1. AIMS AIMS Public

    AI agent operations control plane for agent registry, tool governance, knowledge tracking, run monitoring, and audit evidence.

    TypeScript

  2. EvalGate EvalGate Public

    Deterministic AI agent evaluation and release-readiness harness with prompt versions, test cases, scoring, and Ship/Review/Block decisions.

    TypeScript

  3. wdevelper11-cloud wdevelper11-cloud Public