Vetted scikit-learn Professionals

Pre-screened and vetted.

Bishara Bishara - Entry-Level Software Engineer specializing in AI/ML pipelines

Entry-Level Software Engineer specializing in AI/ML pipelines

1y exp
Braude Academic College of EngineeringBraude College of Engineering

Built a production LLM-powered interview-prep app that ingests job postings and generates tailored preparation plans. Iterated from a single generalist LLM to a multi-LLM pipeline and used RAG to ground the final chat assistant on locally stored intermediate outputs; has also experimented with n8n vs Python-coded pipelines for orchestration.

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Christopher Crow - Mid-Level Full-Stack Developer specializing in Python/FastAPI and React in The Woodlands, TX

Mid-Level Full-Stack Developer specializing in Python/FastAPI and React

The Woodlands, TX7y exp
dataAnnotationWestern Governors University
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HR

Intern Full-Stack Developer specializing in web apps and machine learning

India0y exp
We Logical Software SolutionLong Island University
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SO

Junior Software/AI Engineer specializing in GPU-accelerated HPC and machine learning

Wichita Falls, Texas4y exp
Midwestern State UniversityMidwestern State University
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Mohammad Al-Hudban - Intern AI Engineer & Data Scientist specializing in GenAI, LLMs, and RAG in Leoben, Austria

Intern AI Engineer & Data Scientist specializing in GenAI, LLMs, and RAG

Leoben, Austria0y exp
Montanuniversität LeobenAl-Hussein Technical University

Currently working at CBS Lab in Austria, where they implemented/replicated the "Open World Grasping" research pipeline end-to-end. Built a ROS-based RGB-D perception-to-action system using SAM 2.1 segmentation and MoveIt motion planning to generate grasp poses and execute pick-and-place/sorting with a robotic arm.

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Kumar Manik - Intern AI Engineer specializing in LLMs, MLOps, and RAG systems

Kumar Manik

Screened

Intern AI Engineer specializing in LLMs, MLOps, and RAG systems

0y exp
Elevate LabsBarkatullah University

Built and shipped a production-grade RAG-powered news summarization and Q&A product, tackling real-world issues like retrieval drift, hallucinations, latency, and autoscaling deployment (Docker + FastAPI + Streamlit Cloud). Experienced in end-to-end ML/LLM workflow automation using Airflow, Kubeflow Pipelines, and MLflow, and has demonstrated business impact (40% inference precision improvement) through close collaboration with non-technical stakeholders at Evoastra Ventures.

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AA

Entry Machine Learning Engineer specializing in quantitative finance and DeFi

Built and deployed a production RAG chatbot using a vector database + LangChain-orchestrated pipeline, focusing on grounded, context-aware responses. Demonstrates practical trade-off thinking (retrieval quality vs latency/cost), hallucination control, and iterative improvement through logging, manual review, and stakeholder feedback loops.

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DS

Junior Full-Stack Developer specializing in React, Node.js, and AI/ML

Mumbai, Maharashtra, India3y exp
FreelanceVidyavardhini's College of Engineering and Technology
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Yash Sharma - Intern Full-Stack & Machine Learning Developer specializing in MERN and real-time systems in Punjab, India

Intern Full-Stack & Machine Learning Developer specializing in MERN and real-time systems

Punjab, India0y exp
CorizoLovely Professional University
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SS

Intern Full-Stack Developer specializing in MERN and applied AI/ML

Telangana, India
IOStreak SolutionsSR University
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MA

Entry AI Engineer specializing in machine learning, computer vision, and data mining

Houston, TX
University of DamascusUniversity of Damascus
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KP

Entry Data Scientist specializing in applied mathematics and predictive modeling

San Francisco, CA1y exp
San Francisco State UniversitySan Francisco State University
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PR

Entry-level Product Manager and AI/ML Engineer specializing in agentic AI

California, USA1y exp
California Science & Technology UniversityCalifornia Science & Technology University
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Built an automated ML/NLP document classification system for unstructured legal documents, combining classical models (TF-IDF + logistic regression/random forest) with entity resolution via fuzzy matching validated by precision/recall. Also implemented semantic similarity search using sentence embeddings stored in FAISS and improved matching by fine-tuning a transformer on domain-specific data and tuning similarity thresholds for fewer false positives.

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HF

Intern Machine Learning Engineer specializing in NLP, RAG, and time-series forecasting

New York, NY0y exp
Gao TekVirtual University of Pakistan
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