William Davis

Hi! I'm William Davis.

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"Creating innovative AI solutions that enhance performance and drive project success."

california,usa
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About Me

I'm William Davis, a detail-oriented Machine Learning Engineer passionate about leveraging deep learning and NLP to solve complex problems. I thrive in collaborative environments, pushing the boundaries of technology to deliver scalable AI solutions that meet real-world needs.

Professional Experience

Machine Learning Engineer

Alignerr
Jan 2026 – Present
Remote
Key Responsibilities & Tech:
  • Enhanced LLM evaluation precision by 15% through a comprehensive review of a rubric-based scoring framework across six reasoning categories.
  • Analyzed over 50 audio files for integration into ASR pipelines.
  • Evaluated AI agent responses, identifying failure points such as inference memory and self-coherence, resulting in a 20% improvement in model accuracy.

Deep Learning Research Assistant

Jadavpur University CMATER Lab
May 2025 – September 2025
Kolkata, India
Key Responsibilities & Tech:
  • Designed and implemented a self-attention mechanism (scaled dot-product) within a pre-trained VGG16, significantly enhancing feature extraction for lung cancer detection from CT scans.
  • Developed a hybrid deep learning architecture achieving 99.54% peak accuracy with only 76k trainable parameters and 0.0256 GFLOPs, facilitating edge-device deployment.
  • Engineered feature fusion through concatenation and element-wise multiplication of original and attention-modulated maps for refined, context-aware representations.

Education & Certifications

Academic Background

Bachelor of Technology

Jadavpur University, Kolkata
Nov 2023 – Dec 2027
CGPA: 7.5

Higher Secondary

Hariyana Vidya Mandir, Kolkata
Apr 2020 – Apr 2022
Percentage: 90%

Featured Projects

TailorCV.ai

TailorCV.aiCheck out ↗

Python, FastAPI, LLM, AI agents, Amazon Web Services

  • Developed an AI web application that optimizes resumes to job descriptions using LLMs and NLP pipelines, improving resume relevance by up to 80%.
  • Designed a Python and FastAPI backend with HTML, CSS, and JavaScript for the frontend, dockerized the application, and deployed it on AWS ECS.
  • Achieved over 50 users within the first week of launch, demonstrating strong early adoption and real-world impact.
PythonFastAPILLMAI agentsAmazon Web Services
YouTube Sentiment Analysis

YouTube Sentiment AnalysisCheck out ↗

TensorFlow, NLP, AWS EC2, Scikit-learn

  • Created an end-to-end YouTube sentiment analysis pipeline processing over 10,000 user comments, enhancing sentiment classification performance through NLP preprocessing techniques.
  • Tracked multiple model experiments using MLflow and DVC, enabling reproducible training and systematic comparison of models built with scikit-learn and NLP libraries.
  • Deployed the pipeline on AWS using Docker and exposed predictions via Flask REST APIs, facilitating scalable and reproducible inference.
TensorFlowNLPAWS EC2Scikit-learn
Smart Product Pricing

Smart Product PricingCheck out ↗

Keras, Hugging Face Transformers, ResNet50, OpenCV

  • Developed an NLP and CV pipeline to analyze 150,000 image and text data using transformer-based text encoders and CNN-based image embeddings, integrating them through a fusion neural network for price prediction.
  • Implemented data preprocessing techniques, including text cleaning, tokenization, and streaming image feature extraction with ResNet and CLIP representations to manage large datasets.
  • Built and fine-tuned models using TensorFlow and scikit-learn, achieving a rank of 142 out of 50,000 participants.
KerasHugging Face TransformersResNet50OpenCV
RAG System

RAG SystemCheck out ↗

  • Made a production-ready RAG pipeline integrating semantic vector retrieval with LLM generation to produce context-grounded responses.
  • Engineered multiple chunking strategies and a scalable ingestion , retrieval , generation flow for efficient semantic search and generation.
  • Implemented history-aware and multimodal augmentations, and evaluated retrieval outputs to measure relevance and quality.

Technical Stack

Skills

Machine Learning
Deep Learning
Natural Language Processing (NLP)
Computer Vision
LLM Fine Tuning
RAG
TensorFlow
PyTorch
scikit-learn
Hugging Face
Pandas
NumPy
Langchain
Flask
FastAPI
Amazon Web Services (AWS)
Docker
MLflow
DVC
Streamlit
CI/CD
PostgreSQL
SQL
ETL Pipelines
Linux
Vector Databases (Chroma)
Python
C
JavaScript
HTML
CSS
Data Structures and Algorithms

Let's Connect

I'd love to hear from you — whether it's a role, a project, or just a chat about tech.

Email

shubhamsarkarthe1@gmail.com
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