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rehan243/README.md

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about me

i'm an AI/ML engineer based in the US. right now i'm building production AI systems at Reallytics.ai and Verticiti, mostly getting large language models to do useful things in the real world. not demos, actual systems with real users and real traffic.

before this i was at Afiniti and Cloud Kinetics for a few years. fraud detection, voice analytics, enterprise search. the kind of stuff that pages you at 3am when something breaks.

honestly what keeps me going is when an agent you built solves something you never explicitly told it to do. that feeling never gets old.

what i'm working on right now:

  • multi-agent systems that don't fall apart when you chain them
  • RAG pipelines that actually return relevant results
  • writing about what i learn every day, check it out here
coding

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featured projects  rocket

Agentic AI Workflows
8 specialized AI agents with LangChain + OpenAI function calling. multi-agent orchestration with planning loops and guardrails. the project i'm most excited about right now.

RAG Enterprise Search
production retrieval pipeline over 2TB+ data. hybrid dense+sparse search with FAISS and BM25, cross-encoder re-ranking. deployed on AWS SageMaker.

Voice AI Platform
real-time voice infrastructure handling 500+ concurrent calls. WebSockets, Kafka, VAD, streaming STT. built the sentiment analysis piece from scratch.

LLM Fine-Tuning LoRA
fine-tuning LLaMA and Mistral with LoRA/QLoRA/PEFT. 40% cheaper than hosted APIs. includes the full training loop, data pipeline, merge + quantize scripts.

RLHF LLM Optimization
full RLHF pipeline: reward model with Bradley-Terry loss, PPO trainer with KL scheduling, DPO as an alternative. 68% win rate on eval, 96% safety compliance.

Sentinel Fraud Detection
ensemble XGBoost + neural net with 650+ engineered features. Redis-backed real-time velocity scoring, SHAP explainability, Kafka alert routing.

view all repositories

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tech stack

not going to pretend i use everything equally. here's what i actually reach for:

tech stack

the full picture (click to expand)
daily drivers Python, PyTorch, FastAPI, Docker, Git, VS Code
LLM and GenAI LangChain, LlamaIndex, HuggingFace Transformers, vLLM, PEFT/LoRA/QLoRA
data and vector FAISS, ChromaDB, Pinecone, PostgreSQL, MongoDB, Redis, Kafka, Elasticsearch
cloud and MLOps AWS (SageMaker, Bedrock, Lambda, ECS), GCP Vertex AI, Azure OpenAI
ML frameworks TensorFlow, scikit-learn, XGBoost, LightGBM, ONNX
infrastructure Kubernetes, Terraform, GitHub Actions, MLflow, Weights & Biases

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github stats

github stats streak stats

top languages


trophies

trophies


contribution graph

contribution graph


my github contributions eating themselves

contribution snake

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recent writeups

i write about what i'm building and learning. nothing polished, more like notes to my future self that happen to be public.

Llm Fine Tuning At Scale With Lora

Llm Fine Tuning At Scale With Lora
2026-05-21

Efficient Deployment Of Large Language Models

Efficient Deployment Of Large Language Models
2026-05-20

Automated Machine Learning For Complex Data Pipeli

Automated Machine Learning For Complex Data Pipeli
2026-05-20

Efficient Fine Tuning And Deployment Of Large Lang

Efficient Fine Tuning And Deployment Of Large Lang
2026-05-19

📚 View all articles →


recent activity

💬 Commented on Feature request: OWASP ASI06 memory poisoning guard validato in guardrails-ai/guardrails (2026-05-22)

💬 Commented on Parallelize or batch entity boost searches in AsyncMemory.se in mem0ai/mem0 (2026-05-22)

💬 Commented on Improve watermarks in POSIX-like objects tracker in pathwaycom/pathway (2026-05-22)

💬 Commented on [BUG] Evaluation-Run: Traces tab aggregation queries use imm in mlflow/mlflow (2026-05-22)

💬 Commented on Broken installer hash with winget when installing 3.67.1 in treeverse/dvc (2026-05-22)

💬 Commented on The templates documentation is pretty unreadable in dottxt-ai/outlines (2026-05-22)

💬 Commented on Add AGENTS.md — guidance for AI coding assistants contributi in guidance-ai/guidance (2026-05-22)

💬 Commented on FAQ section text invisible on mem0.ai/openmemory (black on d in mem0ai/mem0 (2026-05-21)


what i'm reading lately

stuff i've been digging into recently. mostly papers, blog posts, and rabbit holes that kept me up too late.

🔬 Synthetic Data Generation for Training Robust Models

🔬 Large Language Models (LLMs) in Enterprise Workflows

🔬 Production RAG Pipelines with Re-ranking

🔬 AI Safety and Alignment Engineering

🔬 LLM Fine-Tuning at Scale with LoRA

🔬 Automated Machine Learning for Complex Data Pipelines


code snippets

📌 Batch Inference Pipeline with Progress Tracking — Production Pattern (Python) (2026-05-22)

📌 Multi-Provider LLM Router with Fallback — Production Pattern (Python) (2026-05-21)

📌 Embedding Cache with LRU Eviction — Production Pattern (Python) (2026-05-20)

🤖 Profile auto-updated on 2026-05-22 19:56 UTC

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if you made it this far, you should probably just say hi

connect on linkedin   follow on github

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  1. Voice-AI-Platform Voice-AI-Platform Public

    Real-time voice AI infrastructure — 500+ concurrent calls, WebSockets, Apache Kafka, gRPC/C++ with CUDA. Speech-to-text, sentiment analysis, sales insights.

    Python

  2. Agentic-AI-Workflows Agentic-AI-Workflows Public

    Production AI Agents for enterprise automation — 8+ specialized agents using LangChain, OpenAI function calling, and FastAPI. Multi-agent orchestration, tool use, planning loops, guardrails.

    Python

  3. BiiView-Object-Detection BiiView-Object-Detection Public

    Real-time object detection with Meta AI Segment Anything Model (SAM) — 90% accuracy across 11M+ images and 1.1B+ segmentation masks.

    Python

  4. Digital-People-Platform Digital-People-Platform Public

    Hyper-realistic talking avatars — SadTalker lip-sync + Microsoft SpeechT5 TTS + OpenAI conversational AI. 70% realism improvement.

    Python

  5. LLM-Fine-Tuning-LoRA LLM-Fine-Tuning-LoRA Public

    Fine-tuning LLaMA-2, Mistral with LoRA, QLoRA, PEFT — 40% cost reduction vs hosted APIs. VLLM serving with CUDA optimization on AWS SageMaker.

    Python

  6. RAG-Enterprise-Search RAG-Enterprise-Search Public

    Production RAG pipeline — enterprise knowledge retrieval across 2TB+ data using LangChain, FAISS, ChromaDB, PG-Vector with cross-encoder re-ranking. Deployed on AWS SageMaker.

    Python