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Vetted Object Detection Professionals

Pre-screened and vetted.

SP

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

Birmingham, AL4y exp
Torch TechnologiesUniversity of Alabama at Birmingham
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AB

Mid-level Computer Vision Engineer specializing in 3D vision and autonomous navigation

Sunnyvale, CA6y exp
FlyX TechnologiesOklahoma State University
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MU

Junior Robotics Software Developer specializing in ROS2, simulation, and computer vision

Lahore, Pakistan2y exp
AA-RoboticsUniversity of Engineering and Technology
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VG

Mid-level Machine Learning Engineer specializing in computer vision and LLM analytics

San Jose, California6y exp
BramblesUniversity of Central Florida
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MC

Intern Robotics Software Engineer specializing in SLAM, sensor fusion, and autonomous navigation

Remote1y exp
ZensomyMIT World Peace University
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HB

Mid-level Software Engineer specializing in Java microservices and cloud-native systems

MO, USA3y exp
DXC TechnologySoutheast Missouri State University
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DA

Senior Software Engineer specializing in XR/VR graphics and computer vision

UK9y exp
University of HullUniversity of Hull
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AI

Mid-level Generative AI & Computer Vision Research Engineer specializing in diffusion and multimodal models

Israel3y exp
Reality DefenderBen-Gurion University of the Negev
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NS

Mid-level AI/ML Engineer specializing in MLOps, streaming data, and NLP/CV

USA4y exp
CGIUniversity of Central Missouri
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AS

Junior Robotics Software Engineer specializing in ROS2 and embedded systems

Mount Lebanon, Lebanon1y exp
Clever SystemsQueen Mary University of London
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MU

Maneesh Ujji

Screened ReferencesStrong rec.

Junior Machine Learning & Data Science professional specializing in AI agents and applied ML

Cleveland, OH2y exp
AramarkCleveland State University

IT Analyst/research background with hands-on experience deploying and hardening a multi-agent AI support/triage system (ticket ingestion + knowledge-base retrieval) with strong emphasis on reliability and observability. Has debugged real production issues spanning backend services and network latency (sync failures/partial writes) and is comfortable in Linux environments; also has academic exposure to robotics simulation and ROS2.

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PG

Parvesh Garg

Screened ReferencesStrong rec.

Unity Team Lead specializing in multiplayer games and AR/VR

Greater Noida, UP, India14y exp
Real11 Fantasy Sports

Unity gameplay programmer with Photon-based multiplayer experience who built a real-time player feedback system (instant animation/VFX/audio + score updates) using events/ScriptableObjects to keep gameplay and UI decoupled. Has tackled movement desynchronization under variable latency with client-side prediction/interpolation and uses AI tools to speed up prototyping and balancing for a procedurally generated, math-based casual game.

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ST

Sourabh Tiwari

Screened ReferencesStrong rec.

Mid-level Robotics Software Engineer specializing in ROS2 autonomy and computer vision

United Arab Emirates3y exp
PeykbotGuru Gobind Singh Indraprastha University

Robotics software engineer from Bigbot who led localization and perception for an outdoor autonomous delivery robot, building ROS2/Nav2-based autonomy with EKF sensor fusion (IMU/odometry/GPS) and perception-driven dynamic costmaps. Experienced taking systems from Gazebo simulation to real-robot deployment, optimizing real-time behavior via logging-driven debugging and latency reduction, and integrating heterogeneous comms (MAVROS/MAVLink, UART/CAN, MQTT) for distributed and multi-robot setups.

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SS

Mid-level AI Engineer and Data Scientist specializing in LLM agents and RAG systems

Palo Alto, CA5y exp
LemmataUniversity at Buffalo

Built a production-grade LLM evaluation and regression system that stress-tests models across hundreds of iterations, combining LLM-as-judge, semantic similarity, statistical metrics, and rule-based checks, with results delivered via stakeholder-friendly HTML reports and dashboards. Experienced orchestrating multi-agent RAG workflows using LangChain/LangGraph and event-driven GenAI pipelines in n8n integrating OCR, speech-to-text, and external APIs, with strong emphasis on reliability, observability, and explainable failures.

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SG

Junior Robotics/ML Engineer specializing in autonomous UAVs and perception

2y exp
Advanced Respiratory Sleep MedicineUniversity of North Carolina at Charlotte

Machine learning robotics engineer with internship experience deploying object detection and semantic segmentation models to an autonomous vehicle fleet operating in airports and naval docking stations, optimizing with ONNX/TensorRT for NVIDIA Jetson edge deployment. Also built ROS/ROS2-based decentralized multi-drone coordination (TF trees, shared telemetry) validated in Gazebo and networked via Nimbro with sub-10ms latency messaging.

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VG

Junior IoT/Embedded Systems Engineer specializing in ROS 2, LoRa, and sensor fusion

Buffalo, USA1y exp
University at BuffaloUniversity at Buffalo

Robotics/embedded developer with hands-on ROS 2 and micro-ROS experience on ESP32, building a remote-controlled high-power LED system. Worked across power distribution (buck-boost constant 30V), sensor calibration with real-time data checks, and long-range WiFi connectivity using an omnidirectional antenna achieving 100m+ coverage.

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NM

Nem Mehta

Screened

Intern AI & Machine Learning Engineer specializing in computer vision and edge deployment

Cincinnati, OH2y exp
Airtrek RoboticsUniversity of Cincinnati

Built and shipped a real-time AI robotic inspection system, using a synthetic data generation pipeline to address rare edge cases—cutting data collection costs ~60% and boosting hard-scenario accuracy ~20%. Experienced in productionizing ML on constrained Jetson hardware and orchestrating end-to-end ML workflows with Airflow/Docker/Kubernetes, with a metrics-driven approach to reliability, evaluation, and stakeholder communication.

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RM

Senior Data Scientist / AI Engineer specializing in LLMs, RAG, and production ML

New York, NY5y exp
Bluesap SolutionsDePaul University

Data science professional who has built a production RAG-based LLM question-answering system ("Flash Query") to deliver fast, accurate answers over large document collections, focusing on retrieval quality and grounded responses. Also collaborates with non-technical retail/jewelry stakeholders to turn business questions into predictive models and dashboards for decision-making.

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PM

Pranav Mishra

Screened

Junior Machine Learning Engineer specializing in LLM agents, RAG, and MLOps

Charlotte, NC2y exp
WheelPriceUniversity of Illinois Chicago

AI/ML engineer who has shipped production systems across computer vision and conversational agents: built a YOLOv8-based wheel fitment pipeline at a Techstars-backed automotive startup, focusing on sub-second latency, monitoring, and robust fallback mechanisms that drove 2–3x page view growth and +5–6k users. Also built a voice-based interview platform orchestrating Deepgram + GPT-4 Mini + OpenAI TTS with FSM-driven reliability, and has hands-on RAG experience (LangChain, hybrid retrieval, cross-encoder reranking, custom pseudo-query generation).

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YA

Mid-level Robotics & Computer Vision Engineer specializing in SLAM and edge AI

Seoul, South Korea
Chungbuk National UniversityChungbuk National University

Robotics/SLAM-focused engineer who worked on RT-Appearance mapping using NetVLAD, replacing traditional CV feature extraction with a deep learning approach to improve loop closure in repetitive green environments. Has hands-on ROS1/ROS2 experience (including bridging), point-cloud alignment with G-ICP for sensor-parameter matching, and Gazebo+Docker simulation testing for motion planning/perception.

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VK

Vamsi Krishna

Screened

Senior Machine Learning Engineer specializing in MLOps and Generative AI

Austin, TX7y exp
Tungsten AutomationUniversity of Central Missouri

Built and deployed a production generative-AI copilot at Tungsten that automates invoice/form extraction template creation, reducing weeks of manual model-building work. Combines fine-tuned LLMs (PyTorch/HuggingFace) with OpenCV layout grounding to reduce hallucinations, and runs an end-to-end Kubeflow-based MLOps pipeline with drift monitoring, canary releases, and automated retraining.

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