Fatima Dossa

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Fatima Dossa

Graduate of 2026
BS Computer Science

Aspiration Statement

I am interested in applying AI and Machine Learning to solve real-world problems through data-driven analysis. I aim to build intelligent, scalable systems grounded in strong technical and analytical thinking.

Core Skills

  • Data Analysis & Visualization (Pandas, NumPy, Looker Studio)
  • Machine Learning
  • Python
  • SQL (BigQuery)
  • Statistical Analysis

Core Competencies

  • Acts with Ownership
  • Agility
  • Planning
  • Takes Initiative

Preferred Career Paths

First priority: AI / Machine Learning Engineer

Second priority: Data Scientist / Applied AI Analyst

Third priority: AI Research / Applied Research Associate

Experience

Leadership / Meta-curricular

  • President, Wise (Women in Science and Engineering)
  • Research and Marketing Lead, Huaic (Habib University Artificial Intelligence Chapter)
  • Treasurer, Sports & Recreational Club
  • Habib University Table Tennis Competition Lead, Sports & Recreational Club
  • Pr Cabinet Team Member, Habib University Student Government

Internship / Volunteer Work

  • Technical Trainer, Codeschool (January 2026)
  • Lead Instructor, Codeschool (March 2025 – April 2026)
  • Research Fellow, Girlswhoml (August – November 2025)
  • Business Intelligence Intern, Waada (June – July 2024)

Final Year Project

Project Title

Al Khidmat Public Chat Portal

Description

The AI-powered multilingual chat portal for Alkhidmat Foundation addresses manual query-handling delays by providing a centralized, inclusive solution. Using a Self-RAG (Retrieval-Augmented Generation) and Agentic AI pipeline, it automates responses for donor, healthcare, and general domains in English, Urdu, and Roman Urdu. The system utilizes multilingual-e5-base embeddings and pgvector for semantic search, with OpenAI and Alif for generation. To ensure accuracy, it employs a domain classification and confidence scoring engine that fuses retrieval quality with token probability. Key benefits include 24/7 accessibility for underserved communities, reduced staff workload, and automatic human-agent escalation for complex queries. Moreover, there is a dedicated admin dashboard to view LLM analytics and update the RAG Knowledge Base.

Project Pictures