Vetted Data Preprocessing Professionals

Pre-screened and vetted.

TC

Mid-level Software Engineer specializing in Python, distributed systems, and AI backend services

San Francisco, CA6y exp
OpenAIWebster University
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RK

Mid-level AI/ML Engineer specializing in FinTech risk and fraud systems

San Francisco, CA4y exp
PlaidSaint Louis University
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SP

Senior AI/ML Engineer specializing in GenAI, agentic systems, and healthcare AI

Bonham, TX12y exp
AnthropicTexas Tech University
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MC

Executive engineering leader and full-stack engineer specializing in FinTech and AI platforms

San Francisco, CA16y exp
NavigateAICornell University
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WW

Senior AI Engineer specializing in machine learning, NLP, and generative AI

Madison, WI13y exp
AmazonCase Western Reserve University
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KT

Kenil Tanna

Screened

Staff-level Machine Learning Engineer specializing in LLMs and MLOps for Financial Services

New York, NY7y exp
JPMorgan ChaseIIT Guwahati

Machine learning/NLP practitioner at J.P. Morgan who led development of a production RAG system and an entity resolution pipeline for complex financial data. Deep hands-on experience with embeddings (Sentence-BERT), vector search (FAISS/pgvector), LLM fine-tuning (LoRA/PEFT), and rigorous evaluation (human-in-the-loop + A/B testing) backed by strong MLOps on AWS (Docker/Kubernetes, MLflow, Prometheus/Datadog).

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SS

Sai supriya

Screened

Mid-level AI/ML Engineer specializing in LLM alignment, safety, and scalable inference

St. Louis, MO7y exp
AnthropicSaint Louis University

Built and productionized an AWS-hosted, Kubernetes-orchestrated RAG assistant that enables natural-language Q&A over internal document repositories with grounded answers and citations. Demonstrates strong applied LLM engineering: hallucination mitigation, hybrid retrieval + re-ranking, and rigorous evaluation via benchmarks and A/B testing, plus real-world scaling of compute-heavy inference with dynamic batching and monitoring.

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ZS

Ziwen Shen

Screened

Junior AI/ML Engineer specializing in machine learning and applied research

Remote, USA2y exp
Okapi Sports IntelligenceBrown University

Machine learning/AI engineer focused on agentic product experiences, including a parts-finding assistant and other AI-driven tools. Has worked on reinforcement learning projects, agent state management, and making AI understandable for non-technical users through visuals and simplified explanations.

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QL

Qiang lu

Screened

Senior Robotics & Embodied AI Engineer specializing in closed-loop perception-to-action systems

Santa Clara, CA9y exp
AmazonUniversity of Denver

Robotics software engineer who built the behavior-tree orchestrator for the Vulcan Stow robotic system, migrating from a state machine to significantly improve testability. Experienced with ROS 1 and Baidu Apollo workflows (rosbag, LiDAR/image extraction) from self-driving simulation work at LG Silicon Valley Lab, and currently focused on stable Docker/docker-compose-based deployments with disciplined QA and hotfix processes.

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MJ

Senior AI/ML Engineer specializing in Generative AI, NLP, and RAG systems

Mesquite, TX11y exp
AmazonUniversity of Texas at Dallas

ML/NLP engineer focused on production-grade data and search/recommendation systems: built an end-to-end pipeline that connects unstructured customer feedback with product data using TF-IDF/BERT, Spark, and AWS (SageMaker/S3), orchestrated with Airflow and monitored for drift. Also has hands-on experience with entity resolution at scale and improving search relevance via BERT embeddings, FAISS vector search, and domain fine-tuning validated with precision@k and A/B testing.

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Deepit Shah - Entry Software Engineer specializing in AI infrastructure and ML inference systems in Seattle, WA

Entry Software Engineer specializing in AI infrastructure and ML inference systems

Seattle, WA2y exp
AmazonUniversity of Illinois Urbana-Champaign
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Pavankumar Pendela - Mid-level AI/ML Engineer specializing in LLMs, RAG, and multi-agent systems in Centerton, AR

Mid-level AI/ML Engineer specializing in LLMs, RAG, and multi-agent systems

Centerton, AR6y exp
MetaUniversity of the Cumberlands
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RP

Senior AI/ML Engineer specializing in personalization, recommendations, and forecasting

KS, United States12y exp
TargetKansas State University
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SR

Mid-level AI/ML Engineer specializing in LLM fine-tuning and RAG systems

San Francisco, CA5y exp
Scale AIConcordia University
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BV

Mid-Level Software Engineer specializing in backend systems and AI/NLP

Texas, USA4y exp
DeloitteCampbellsville University
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RS

Mid-level AI & ML Engineer specializing in NLP, LLMs, and scalable ML systems

Cupertino, CA6y exp
AppleVisvesvaraya Technological University

AI/ML engineer with experience spanning Accenture healthcare NLP systems, academic research, and Apple on-device LLM integration. Stands out for owning regulated production pipelines end-to-end—from HIPAA-compliant clinical NLP and EHR integrations to incident prevention, experiment tracking, and optimized on-device inference with LLaMA 3.

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Seongjae Ahn - Intern/Junior Robotics & Controls Engineer specializing in simulation, teleoperation, and diffusion policies in Berkeley, CA

Seongjae Ahn

Screened

Intern/Junior Robotics & Controls Engineer specializing in simulation, teleoperation, and diffusion policies

Berkeley, CA2y exp
Khameleon RoboticsUC Berkeley

Robotics software engineer focused on simulation-to-teleoperation pipelines in NVIDIA Isaac Lab/Isaac Sim, including custom Dynamixel motor control integrated with USD/physics for dataset collection. Has hands-on ROS2 Humble + MoveIt2 integration for UR + Robotiq in Omniverse and builds Docker/CI workflows for GPU-enabled robotics stacks; also brings MPC coursework and multi-robot ocean drone comms experience (XBee/I2C).

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Keerthana Senthilnathan - Junior Machine Learning Engineer specializing in LLM systems and inference reliability in California, USA

Junior Machine Learning Engineer specializing in LLM systems and inference reliability

California, USA1y exp
llm-dUC San Diego

ML/LLM infrastructure-focused engineer who built a production stateful LLM inference service that cuts latency and GPU compute for repeated/overlapping prompts via caching with correctness guardrails. Strong in Kubernetes-based deployment and reliability engineering, using A/B testing and similarity-based evaluation to quantify performance gains without sacrificing output quality.

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VM

Intern Software Engineer specializing in backend APIs and iOS development

Los Angeles, CA0y exp
AppleUSC
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Eshna Gupta - Intern Software Engineer specializing in full-stack development and machine learning in Menlo Park, CA

Intern Software Engineer specializing in full-stack development and machine learning

Menlo Park, CA3y exp
MetaUSC
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IR

Mid-level Machine Learning Engineer specializing in LLMs, RAG, and real-time recommendation systems

NY, NY4y exp
SpotifyOld Dominion University
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