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Vetted NumPy Professionals

Pre-screened and vetted.

NumPyPythonpandasDockerSQLscikit-learn
AP

Ashay Panchal

Screened

Mid-level Software Engineer specializing in AI-driven distributed systems

San Jose, CA4y exp
Be Still AnalyticsNortheastern University

“Backend engineer who built a high-stakes, privacy-first platform at be Still Analytics for survivors of domestic violence, emphasizing anonymity, security, and reliability. Experienced with GenAI backends (LangChain + AWS Bedrock) including RAG to prevent hallucinations, plus cloud-native scaling (Docker/Kubernetes) and cost-saving migrations from legacy VMs to serverless (30% reduction).”

AWSAWS LambdaCI/CDC++Computer VisionContainerization+84
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VS

Vikram Sandigaru

Screened

Mid-level AI Engineer specializing in AI agents, RAG pipelines, and LLM evaluation

Boston, US3y exp
FounderWayNortheastern University

“Built and shipped production LLM systems at Founderbay, including a low-latency voice agent and a graph-based multi-agent research assistant. Strong focus on reliability in real workflows—hybrid SERP + full-site scraping RAG, grounding guardrails, validation checkpoints, and transcript-driven evaluation—plus performance tuning with async FastAPI, Redis caching, and containerization. Also partnered with a non-technical ops lead to automate post-call follow-ups via call summarization, field extraction, and tool-triggered actions.”

A/B TestingAWSCI/CDData ValidationDatabricksDebugging+85
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YA

Yash Amre

Screened

Intern Data Scientist specializing in LLMs, NLP, and MLOps

California, USA1y exp
LexTrack AIUniversity of Colorado Boulder

“Built and deployed a production LLM-powered internal AI assistant using a RAG pipeline to help teams search internal PDFs/knowledge bases and generate grounded summaries/answers. Demonstrates strong end-to-end ownership (ingestion through APIs) plus production rigor (monitoring/logging/CI-CD, evaluation metrics) and practical optimizations for hallucination, latency, and answer quality (thresholding, fallbacks, caching, async, re-ranking, two-tier model routing).”

PythonRSQLSwiftCHTML+107
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KP

Kundhana Paruchuru

Screened

Mid-level Data Scientist specializing in ML, LLM pipelines, and MLOps

Remote, USA3y exp
Heartland Community NetworkIndiana University Bloomington

“Built and deployed a production LLM-driven document understanding pipeline using LangChain/LangGraph, focusing on reliability via step-by-step prompting, validation checks, and monitoring. Also partnered with non-technical marketing stakeholders at Heartland Community Network to deliver an XGBoost targeting model surfaced in Power BI, improving campaign conversion by 12%.”

A/B TestingAmazon BedrockAmazon S3Amazon SageMakerAWSCI/CD+70
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DS

Durga Samhitha Muvva

Screened

Junior AI Engineer specializing in LLMs, RAG, and MLOps

San Jose, California2y exp
ReferU.AISan José State University

“At ReferU.AI, designed and deployed an agentic RAG pipeline that automates multi-jurisdiction legal document drafting, emphasizing hallucination reduction through hybrid retrieval, validation agents, guardrails, and iterative regeneration. Experienced with orchestration frameworks (especially CrewAI) and rigorous testing/evaluation practices including human-in-the-loop review, adversarial testing, and production metrics/logging.”

PythonSQLJavaNumPyPandasSciPy+110
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PT

Phani Tarun Munukuntla

Screened

Junior Machine Learning Engineer specializing in LLMs, NLP, and MLOps

New York, USA2y exp
University at BuffaloUniversity at Buffalo

“Developed and productionized VL-Mate, a vision-language, LLM-powered assistant aimed at helping visually impaired users understand their surroundings and query internal knowledge. Emphasizes reliability and safety via confidence thresholds, uncertainty-aware fallbacks, hallucination grounding checks, and rigorous offline + user-in-the-loop evaluation, with experience orchestrating multi-step LLM pipelines (LangChain-style and custom Python async) and deploying on containerized infrastructure.”

PythonPySparkApache AirflowJavaJavaScriptSQL+121
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AN

Anar Nurizada

Screened

Mid-level Robotics Engineer specializing in simulation-to-real ML control

Brooklyn, NY5y exp
DL-RLStony Brook University

“Robotics/ML engineer who benchmarks and adapts open-source robot action models, building synthetic datasets in Isaac Sim and modifying vendor code to scale training across multiple GPUs. Also built a production-style computer vision pipeline at Zortag—training a tiny YOLO-based classifier for fake-vs-real label detection and deploying it in a real-time iOS app with additional display/spoof detection.”

RoboticsMachine LearningDeep LearningReinforcement LearningTransformersComputer Vision+157
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AM

Annamalai Muthupalaniappan

Screened

Mid-level Robotics/Software Engineer specializing in autonomous navigation and ROS2

Newark, Delaware4y exp
University of DelawareUniversity of Delaware

“Early-career robotics software engineer with a couple years of ROS/ROS2 experience focused on agricultural mobile robots. Led integration of a Livox MID-360 3D LiDAR on the Farm-ng Amiga platform, patching ROS2 drivers/QoS and building a 3D-to-2D mapping pipeline so Nav2 could run reliable SLAM/navigation in GPS-denied greenhouse/hop-field environments, enabling stable autonomous row-following.”

PythonC++CSQLMATLABBash+118
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JB

Jesus Betancourt

Screened

Intern Software Quality Engineer specializing in QA automation and robotics

3y exp
PanduitCalifornia State University, Sacramento

“Robotics project manager and software lead for an underwater ROV (MATE 2024–2025), building a ROS 2 Jazzy stack on Raspberry Pi and a serial Pi-to-Arduino thruster control system for a 6-thruster configuration. Also has internship experience creating automated functional test pipelines using Jenkins, Selenium, and Python, plus exposure to Isaac Sim for simulated/synthetic data generation in an embodied AI hackathon.”

CC#C++PythonJavaTypeScript+90
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SK

Satish Kumar Reddy

Screened

Mid-level AI/ML Engineer specializing in NLP, computer vision, and MLOps

Remote, NJ5y exp
Tungsten AutomationPace University

“Built and deployed a production LLM/RAG intelligent document understanding platform for healthcare clinical documents (notes, discharge summaries, diagnostic reports), integrating spaCy entity extraction, Pinecone vector search, and a Spring Boot API on AWS with monitoring and guardrails. Demonstrates strong MLOps/orchestration (LangChain, Airflow, Kubeflow/Kubernetes) and a metrics-driven evaluation approach, and partnered with a healthcare operations manager to cut manual review time by 80%.”

PythonRJavaC++SQLPostgreSQL+142
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AS

Arjun Shrestha

Screened

Intern AI/GenAI Engineer specializing in NLP, RAG, and Snowflake Cortex

Columbus, Ohio1y exp
VertivLamar University

“Built and deployed a production AI invention/patent review platform that compares invention submissions against patent rules to provide instant feedback, reportedly cutting legal team review time by ~80%. Learned Snowflake Cortex LLMs and production deployment (Docker + AWS) on the job, and validated system quality through human-in-the-loop testing with experienced legal stakeholders.”

Amazon ECSAWSBERTData preprocessingDockerFastAPI+70
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GA

Gopichand Amaraneni

Screened

Mid-level AI/ML Engineer specializing in healthcare ML, MLOps, and LLM/RAG systems

USA4y exp
CitiusTechNorthwest Missouri State University

“Healthcare-focused ML/LLM engineer who built a production hybrid RAG workflow to automate prior authorization by retrieving from medical guidelines/historical cases (FAISS) and generating grounded rationales for clinicians. Strong in operationalizing ML with Airflow/Kubeflow/MLflow on SageMaker, optimizing latency (ONNX/quantization/async), and reducing hallucinations via evidence-only prompting; also partnered closely with clinical ops to deploy a readmission prediction tool used in daily rounds.”

PythonNumPyPandasJSONSQLPostgreSQL+151
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RV

Rahul Vemuri

Screened

Mid-level Data Engineer specializing in AI/ML, RAG systems, and cloud data pipelines

Malvern, PA4y exp
PQ CorporationPenn State Great Valley School of Graduate Professional Studies

“Built a production lead-generation system using AI agents that researches the internet for relevant leads and integrates RAG-based contact enrichment/shortlisting aligned to existing CRM data, enabling sales reps to focus more on selling. Also has hands-on AWS data orchestration experience (Glue, Step Functions) moving raw data into Redshift and evaluates agent performance with human-in-the-loop plus BLEU/perplexity metrics.”

Amazon BedrockAmazon RedshiftAmazon S3Apache AirflowAnomaly DetectionAWS+137
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AV

Akshar Vandara

Screened

Junior Game Developer specializing in gameplay systems, UI, and procedural generation

Boston, MA2y exp
Game Design Lab, Northeastern UniversityNortheastern University

“UE5 gameplay scripter (Blueprint-focused) from small startup teams who specializes in setting up core project architecture (game loop/data flow, controller, game instance, UI/menu) and building modular systems reused across multiple games. Rebuilt a save-system architecture from scratch to replace a problematic asset and improve scalability/maintainability, and has hands-on performance optimization experience (profiling, level streaming, Nanite-to-LOD tradeoffs). Also implemented a realistic cricket match simulation using Markov chains and transition matrices.”

UnityPerformance OptimizationDebuggingFirebaseC#C+++119
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WK

Wijdaan Khundmiri

Screened

Mid-level Full-Stack Developer specializing in cloud-native microservices and AI/ML

New York, USA4y exp
Versa NetworksSUNY Old Westbury

“Full-stack/AI engineer who has shipped production systems spanning real-time analytics dashboards and an internal LLM-powered knowledge assistant. Experienced with RAG pipelines (embeddings/vector DB, semantic retrieval, query rewriting) plus evaluation loops and guardrails, and builds observable Kafka-based data pipelines monitored with Prometheus/Grafana.”

AgileAJAXAmazon CloudWatchAmazon EC2Amazon ECSAmazon EKS+186
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JV

Jyothsna V

Screened

Mid-level Backend Software Engineer specializing in Python/FastAPI and cloud-native microservices

USA4y exp
Coke One North AmericaWestern Illinois University

“Backend engineer who evolved Coca-Cola bottlers' Trade Promotion Optimization platform at Coke One North America, building domain-focused microservices in Node.js and Python (Flask/FastAPI) with PostgreSQL. Experienced in multi-tenant security (OAuth2/JWT, RBAC, row-level scoping by bottler/region), API contract/versioning discipline, and Azure DevOps-driven incremental rollouts with strong observability.”

PythonJavaJavaScriptCC++HTML+149
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SM

Sahana Mudduluru

Screened

Mid-level Full-Stack Engineer specializing in cloud-native FinTech analytics

McKinney, TX5y exp
Martingale Solution GroupUniversity of Texas at Dallas

“Full-stack/ML-leaning engineer who has shipped production-grade real-time analytics and an internal AI support assistant using RAG over enterprise documentation. Demonstrates strong systems thinking across scalability, reliability, observability, and LLM safety/evaluation (thresholded retrieval, RBAC, response validation, regression-gated evals), with concrete iteration based on performance metrics and user feedback.”

PythonJavaScriptReactNode.jsDjangoMicroservices+117
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PJ

Prithvi Jai Ramesh

Screened

Junior Robotics Engineer specializing in AI, perception, and autonomous navigation

Tempe, AZ1y exp
Arizona State UniversityArizona State University

“Robotics software engineer with 2+ years of ROS/ROS2 experience who built a mobile robot stack from scratch (Fusion 360 → URDF → ROS) and integrated teleop, SLAM, and navigation. Worked in an ASU lab applying deep learning for person tracking on a TurtleBot setup, and solved real deployment issues like Raspberry Pi video-stream latency via compression and on-board processing. Also reports experience with CI/CD tooling (Jenkins) and Kubernetes.”

C++Deep LearningDockerFastAPIGazeboGit+93
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MS

Mohammed Syed

Screened

Mid-level AI Engineer & Researcher specializing in healthcare AI and multimodal LLM systems

Remote2y exp
University of ArizonaUniversity of Arizona

“Backend/ML engineer focused on clinical AI transparency who built ShifaMind, an explainability-enforced clinical ML system using UMLS/MIMIC-IV/PubMed data with RAG, GraphSAGE, and cross-attention. Demonstrated strong production engineering via FastAPI API design and safe migrations (feature flags/shadow inference), plus HIPAA-aligned auth/RLS patterns; also delivered a real-time comet detection system reaching 97.7% accuracy.”

Anomaly detectionAWSBlenderCC++Collaboration+168
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SS

Satya Srinivas Bokka

Screened

Entry-level AI Engineer specializing in LLM agents, RAG, and computer vision

Buffalo, NY0y exp
Bheema RoboticsUniversity at Buffalo

“Robotics/AV-focused candidate who contributed to an F1TENTH autonomous vehicle college project, building key autonomy components from raw sensor data to driving commands. Strong in perception and state estimation (visual odometry, particle-filter localization), plus mapping (occupancy grids) and planning/control (RRT, Gap Follow, PID), with hands-on ROS tooling and simulation validation in Gazebo/RViz and ROS environment containerization using Docker.”

AWSCC++Computer VisionDeep LearningFAISS+112
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PS

Puja Sridhar

Screened

Intern AI/ML Engineer specializing in LLMs, RAG, and agentic automation

Remote0y exp
Pennant EducationRutgers University

“Built and deployed production NLP/LLM systems including a multilingual (5-language) health misinformation detection pipeline with latency optimization (batching/quantization/caching) and explainability (gradient-based attention visualizations). Experienced orchestrating end-to-end AI workflows with Airflow and Prefect, and partnering with customer support ops to deliver an AI agent for ticket summarization and priority classification with clear, measurable acceptance criteria.”

PythonSQLGenerative AILarge Language Models (LLMs)LangChainRetrieval-Augmented Generation (RAG)+102
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TC

Tamanna Choithani

Screened

Intern Full-Stack Software Engineer specializing in web apps and applied AI

Bay Area, USA1y exp
BottlelyArizona State University

“Full-stack engineer who built an AI-based inventory/procurement query system at Botlily/Botlerly using Flask and Google Sheets as a live knowledge base, overcoming Sheets latency with caching and structured in-memory models. Demonstrated strong LLM product engineering (40% accuracy improvement via preprocessing/prompting) and customer-driven iteration with bar/restaurant owners, evolving the tool into a more comprehensive inventory management and forecasting solution.”

PythonCC++JavaGoJavaScript+123
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JL

Josh Lucas

Screened

Junior Full-Stack Developer specializing in web, mobile, and AI systems

1y exp
FreelanceUniversity of Alberta

“Frontend product builder who has shipped and maintained a two-mobile-app ecosystem (user + employee) backed by Node.js, emphasizing separation of concerns, shared libraries for reuse, and TypeScript type safety. Re-architected a Sunmor Research codebase using MVC, improving readability and collaboration and taking the product from unusable to working, with a strong regression-testing mindset and customer-feedback-driven iteration.”

AgileAndroidCC++CSSData Structures and Algorithms+47
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