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Vetted Natural Language Processing Professionals

Pre-screened and vetted.

Natural Language ProcessingPythonDockerSQLAWSCI/CD
SC

Sai Chandra Bandi

Screened

Mid-level AI/ML Engineer specializing in Generative AI, LLM alignment, and RAG

CA6y exp
Scale AIUniversity of Texas at Arlington

“Built and productionized a real-time enterprise RAG pipeline to improve factual accuracy and reduce LLM hallucinations by grounding responses in constantly changing internal knowledge bases (policies, manuals, FAQs). Experienced in orchestrating end-to-end ML workflows (Airflow/Kubernetes), handling messy multi-format data with schema enforcement (Pydantic/Hydra), and maintaining freshness via streaming incremental embeddings plus batch refresh. Also delivers applied ML solutions with non-technical teams (marketing/CRM) for segmentation and personalized engagement.”

A/B TestingAmazon CloudWatchApache SparkAWSAWS LambdaBash+167
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PP

Prasanth Peddireddy

Screened

Entry-level Supply Chain & Test Engineer specializing in warehouse automation and robotics

1y exp
Procter & GambleMichigan State University

“P&G operator who is also building and selling an AI receptionist (voice agent) SaaS for healthcare/service clinics, using EHR + calendar API compatibility to target accounts and letting the Voice AI run parts of the demo to prove value. Has already closed and deployed to two clients in the last two months, with production impact via reduced front-desk overhead and automated scheduling/FAQs, and brings a structured, scalable deployment/process mindset from global WMS rollouts.”

AgileAsanaBashCC++Computer Vision+150
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JX

Jingfei Xu

Screened

Intern/Junior Software Engineer specializing in AI/ML and cloud-based systems

Mountain View, CA0y exp
AmazonCarnegie Mellon University

“Embedded/robotics software engineer with Hyundai Motors experience who owned an AI-driven perception validation pipeline using a Transformer-based approach to generate stable synthetic in-cabin audio for autonomy/ASR testing, cutting downstream testing time by 50%+. Has hands-on ROS integration (IMU sensor streaming, inference, control nodes), MQTT-based distributed messaging, and cloud/container deployment experience (Docker, Node/Express, AWS, CI/CD).”

AgileBashBootstrapCC#C+++119
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YZ

Yue Zhao

Screened

Junior Machine Learning Researcher specializing in multimodal LLMs and computer vision

Atlanta, GA1y exp
Georgia Institute of TechnologyGeorgia Tech

“LLM/multimodal systems builder who developed DuetGen, a practical multimodal interleaved text-image generation system using a decoupled MLLM planner and video-pretrained diffusion transformer for high-quality image generation with step-wise alignment. Built a 298K-sample interleaved dataset across 8 domains/151 subtasks and deployed a GPT-5-based automated evaluation framework; also has LangChain-based multimodal agent orchestration experience with custom state management and reliability testing.”

Computer VisionCUDAData StructuresDeep LearningHugging FaceLangChain+54
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AB

Abhinav Bandaru

Screened

Junior Data Scientist specializing in Generative AI and agentic LLM systems

San Jose, CA1y exp
SAPUniversity of Pennsylvania

“LLM/agentic-systems builder who has shipped production tools for investment research and procurement insights, including a company screener that processes thousands of conference-listed companies using FireCrawl + Google Search + Gemini. Demonstrates strong orchestration expertise (LangGraph multi-agent graphs), performance optimization (async/batching to sub-30s), and pragmatic reliability/evaluation practices with stakeholder-friendly UX (real-time cost tracking and model/parameter toggles).”

PythonRSQLPySparkBashGenerative AI+97
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CL

Craig Leathers

Screened

Staff Data Analytics Lead / Data Scientist specializing in manufacturing process control

Bellefonte, PA24y exp
IntelPenn State University

“Intel veteran who applied multiple linear regression and time-series drift analysis to semiconductor lithography overlay/metrology data, feeding model outputs into automated process control. Comfortable working across Python, VBA, and JMP/JSL, with a pragmatic approach to validation (RMSE + trend visualization) and data quality via close coordination with measurement/metrology teams.”

AutomationChange ManagementCross-Functional CollaborationDashboard DevelopmentData CleaningETL+77
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IH

ian holsman

Screened

Executive Engineering Leader (VP/CTO) specializing in Blockchain, DeFi, and FinTech platforms

Remote, USA19y exp
HederaMelbourne Business School

“CTO-focused candidate with experience at foundations evaluating startups, including reviewing technical architectures and coaching teams to refine ideas for better platform fit and synergies. Prioritizes company culture and integrity when choosing leadership roles.”

MicroservicesCloud Native ArchitectureDockerKubernetesCI/CDAutomated Testing+67
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RN

Ronald Nap

Screened

Intern Machine Learning & AI Engineer specializing in computer vision and ML systems

San Jose, CA2y exp
AMDUC Berkeley

“Robotics/ML engineer with internship experience at Valeo building a deep-learning prototype to replace parts of a legacy SLAM backend for autonomous parking, focused on making models run reliably in real time on embedded hardware (quantization/distillation + TensorRT). Also brings strong MLOps/deployment experience (Docker, Kubernetes on AWS EKS, CI via GitHub Actions) and has supported patent filing by explaining the technical approach to legal stakeholders.”

Artificial IntelligenceBashCI/CDComputer VisionData CleaningData Structures & Algorithms+77
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LW

LEQUAN WANG

Screened

Intern Applied Scientist / ML Engineer specializing in NLP and conversational AI

Seattle, WA0y exp
AmazonUC Irvine

“LLM/Conversational AI engineer who built a production multi-turn dialogue system using LoRA fine-tuning on LLaMA, cutting training compute/memory by 90%+ while maintaining low-latency inference via quantization and streaming generation. Experienced in orchestrating end-to-end ML workflows with Prefect/Airflow/Kubeflow (including hyperparameter sweeps and W&B tracking) and improving agent reliability through benchmark-driven testing, shadow-mode rollouts, and stakeholder-informed guardrails.”

PythonJavaCC++PyTorchTensorFlow+88
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KK

Kevin Kyi

Screened

Intern Machine Learning Engineer specializing in RAG systems and AWS cloud infrastructure

Pittsburgh, PA1y exp
BlueFoxLabs AICarnegie Mellon University

“Internship at BlueFoxLabs building and deploying an AI/ML RAG system for a biopharma client on top of LibreChat, including an AWS Textract ingestion pipeline and PGVector retrieval deployed to AWS EKS. Demonstrated production-minded scalability work by moving from a vertically scaled EC2 setup to a horizontally scaling Kubernetes/EKS deployment, using CI/CD to safely incorporate requirement changes like tabular document data.”

PythonCC++JavaJavaScriptTypeScript+80
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RK

Ravikanth Kasamsetty

Screened

Executive AI/ML Engineering Leader specializing in cloud-native SaaS and GenAI platforms

23y exp
ServiceChannelPenn State University

“Engineering leader who modernized and unified a fragmented product suite at Milestone via a multi-year cloud-native roadmap, delivering an MVP in three quarters and boosting team velocity by 40% through cross-functional squads. At Prometheum, led a trust-building hybrid architecture (AWS control plane + customer-hosted data plane) using Kubernetes to ensure sensitive enterprise data never left customer networks while remaining cloud-agnostic across providers.”

Machine LearningArtificial IntelligenceGenerative AILarge Language Models (LLMs)Retrieval-Augmented Generation (RAG)LLM Fine-Tuning+176
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ST

Sason Torosean

Screened

Principal Data Scientist specializing in financial risk, forecasting, and applied ML

San Francisco, CA14y exp
WindfallDartmouth College

“ML/NLP practitioner and technical founder who built an AUP risk-scoring model at Bill.com using TF-IDF + SVD features with XGBoost, and previously created automated data-quality guardrails for a Global Equity Risk stacked ML model at Thomson Reuters. Recently built a RAG-based chatbot for PaymentJock’s Home Affordability Probability product using embeddings and a local vector database (FAISS/Chroma), improving answer quality through chunking rather than expensive fine-tuning.”

PythonSQLMATLABJavaScriptHTMLFlask+110
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SB

Sahil Bansal

Screened

Mid-level Backend & ML Engineer specializing in LLM systems and scalable AI pipelines

Bay Area, CA3y exp
MetaSanta Clara University

“Built and shipped a real-time AI phone agent for small businesses that handles bookings/FAQs/messages using streaming ASR, an LLM with tool-calling, and TTS; deployed to production for multiple paying customers. Demonstrates strong applied LLM reliability practices (tool-first grounding, retrieval, hard-negative testing, and production monitoring) and experience orchestrating multi-step AI workflows with Airflow, Prefect, and AWS Step Functions.”

API GatewayApache AirflowAWSAWS LambdaData EngineeringData Preprocessing+85
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AS

Aditya Sawant

Screened

Mid-level Software Development Engineer specializing in robotics and cloud-based device management

North Reading, Massachusetts3y exp
AmazonUniversity of Texas at Austin

“Amazon Robotics engineer who deployed and scaled the Lumos camera-based package scanning work cell across EU sort centers (100+ work cells in 5+ sites), enabling remote launches via detailed runbooks and troubleshooting. Strong in AWS IoT/edge systems, with hands-on incident recovery (restored 34 down work cells) and secure multi-compute certificate provisioning using IoT Jobs, ACM/CA, and custom roles; delivered ~75% per-cell cost reduction vs Cognex-based approach.”

AlgorithmsAnsibleArtificial IntelligenceAWSAWS IAMC+128
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JR

Jayashree Raman

Screened

Director-level Data Architecture & Governance leader specializing in cloud analytics platforms

Los Angeles, CA16y exp
Sony PicturesUC Berkeley

“Technology/architecture leader with Accenture experience delivering data- and AI/ML-driven products, including a legal contract search solution and customer sales analytics for AWS. Known for scaling distributed teams (onshore/offshore), making pragmatic architecture decisions, and solving hard data problems (proprietary sources, data quality) while implementing scalable integrations like Redshift-to-Salesforce via parallelized pipelines.”

Data ModelingData WarehousingAnalyticsPredictive AnalyticsData GovernanceETL+156
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RM

Ram Melkote

Executive Product & Engineering Leader specializing in Enterprise SaaS, AI/ML, and Mobile platforms

Los Altos, CA25y exp
WalkingSpreeUniversity of Chicago
Machine LearningNatural Language ProcessingLarge Language Models (LLMs)Computer VisionOpenAI APIiOS+109
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SM

Sania Mohammad

Mid-level Full-Stack Python Developer specializing in FinTech and ML-driven automation

California, USA6y exp
StripeSaint Louis University
PythonNode.jsTypeScriptJavaScriptReactRedux+120
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OA

Om Agarwal

Intern Software Engineer specializing in databases and LLM-powered developer tools

Seattle, Washington1y exp
AmazonNortheastern University
AgileBashCC#C++Computer Vision+108
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SS

Shantanu Sharma

Director-level AI/ML Technology Leader specializing in healthcare and life sciences

Brooklyn, NY17y exp
MortyUNC Chapel Hill
Apache KafkaApache SparkAWSAWS IAMAgileC+++80
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AS

Alexey Suminov

Senior Software Engineer specializing in ML integrity and large-scale data pipelines

Redmond, WA11y exp
MetaBauman Moscow State Technical University
Machine LearningData AnalysisAlgorithmsC++C#Python+37
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RM

Reuben Mathew

Intern Machine Learning Engineer specializing in NLP and search

San Francisco, USA2y exp
PlayStationCarnegie Mellon University
AWSC#C++ConfluenceDeep LearningDocker+50
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IL

I-Ling Lee

Junior Software Engineer specializing in cloud infrastructure and automation testing

2y exp
AmazonCarnegie Mellon University
PythonJavaJavaScriptC++HTMLCSS+65
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DR

Dhrubajyoti Ray

Mid-level Data Scientist specializing in NLP, MLOps, and semiconductor manufacturing analytics

Pittsburgh, USA3y exp
TIAACarnegie Mellon University
A/B TestingAWSBashBERTBigQueryC+63
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