Vetted TensorFlow Professionals

Pre-screened and vetted.

Anudeep Reddy Veerla - Mid-Level Software Engineer specializing in cloud-native microservices in Boston, MA

Mid-Level Software Engineer specializing in cloud-native microservices

Boston, MA3y exp
Tech MahindraUniversity of the Potomac

Built and shipped both a solo real-time multiplayer Spades game (TypeScript monorepo with shared client/server engine) and a production internal LLM-powered document Q&A tool for a SaaS company. Demonstrates strong RAG pipeline design (Pinecone + embeddings + reranking), rigorous eval/regression practices, and pragmatic data ingestion/observability work across Confluence, Notion, and messy PDFs/OCR—backed by clear metric improvements (P@1 61%→78%, escalations 40%→22%).

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Jai Vilatkar - Junior AI/ML Developer specializing in GenAI, LLM agents, and RAG systems in Pune, India

Jai Vilatkar

Screened

Junior AI/ML Developer specializing in GenAI, LLM agents, and RAG systems

Pune, India2y exp
NexaByte TechnologiesVellore Institute of Technology

Built and shipped an agentic RAG chatbot module for NexaCLM to answer questions across large volumes of contracts while minimizing hallucinations and incorrect legal interpretations. Implemented routing between vector retrieval and ReAct-style agent retrieval plus an automated grading/validation layer (cosine-similarity thresholds, retries) and deployed via GitHub Actions to Azure Container Apps, partnering closely with legal stakeholders to define risk/clause-focused objectives.

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Jayasri Guthula - Mid-level Applied ML Engineer specializing in LLM evaluation and multimodal agent systems in Remote

Mid-level Applied ML Engineer specializing in LLM evaluation and multimodal agent systems

Remote5y exp
Handshake AIUniversity of Arkansas at Little Rock

Full-stack engineer working at the intersection of product and infrastructure, building developer-facing interfaces for AI voice agents in XR/immersive environments plus telemetry-heavy analytics dashboards. Experienced in Postgres telemetry data modeling and performance tuning, and in designing durable multi-step LLM pipelines with idempotency, retries, and strong observability; has operated in fast-moving startup-like teams (Biocom, HandshakeAI).

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OA

Mid-level Full-Stack AI Engineer specializing in healthcare and enterprise SaaS

Long Island, NY5y exp
FIDI HospitalityStony Brook University

Full-stack product engineer who has built AI-assisted CRM and agent workflows in Project SARA and operational systems like payroll for a staffing platform. Stands out for combining React/TypeScript, Django/Postgres, real-time systems, and LLM orchestration with strong product instincts—delivering measurable gains in response time, conversion, and engineering leverage.

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PD

Junior Data Analyst specializing in BI, analytics, and machine learning

Nashik, India2y exp
Om Shree Agro Biotech Bharat Pvt LtdUniversity at Buffalo

Analytics professional with hands-on experience turning messy Excel-based operational data into SQL/Python pipelines and Power BI dashboards, including a production bottleneck project that improved workflow efficiency by 20%. Also brings applied machine learning experience from a Databricks/PySpark loan risk scoring project using logistic regression and XGBoost on large-scale S3 data.

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Srinivasan Gomadam Ramesh - Mid-level AI/Data Engineer specializing in agentic AI and data platforms in Redmond, WA

Mid-level AI/Data Engineer specializing in agentic AI and data platforms

Redmond, WA7y exp
Quadrant TechnologiesUniversity of Texas at Dallas

AI/LLM engineer who built a production resume-parsing and candidate-matching platform at Quadrant Technologies, combining agentic LangChain workflows, VLM-based document template extraction (~85% accuracy), and a hybrid RAG backend for resume-to-JD search. Notably integrated automated LLM evals and metric-based CI/CD quality gates to catch silent prompt/model regressions, and led a 3-person team across frontend/backend/testing.

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PT

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.

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GA

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.

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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.

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HS

Hazim Shaikh

Screened

Mid-Level Software Engineer specializing in AWS microservices and distributed systems

Remote, CA3y exp
Cloud Data TechnologySacramento State

CloudData engineer who productionized an LLM assistant for a warehouse/logistics customer by wrapping it as a versioned, containerized API with guardrails, deterministic post-processing, and full observability. Experienced diagnosing real-time RAG/agentic incidents (latency spikes and confident-wrong answers) using trace-based isolation, replay in staging, retrieval tuning, and canary releases. Regularly runs technical demos/workshops and partners with sales on security/IAM, SLAs, and pilot rollouts to drive adoption.

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AV

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.

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SM

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.

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JJ

Mid-level Data Engineer specializing in cloud data platforms and real-time pipelines

Denton, TX5y exp
Real DynamicsUniversity of North Texas

Data engineer who has owned production pipelines end-to-end—from Kafka/Airflow ingestion through SQL/Python validation and dbt transformations into Redshift/BI. Also built and operated a large-scale distributed web scraping platform (50–100 sites daily, ~5–10M records/day) with Kubernetes, Kafka queues, robust retries/DLQ, anti-bot measures, and backfill-safe raw HTML storage.

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SK

Shai Kalev

Screened

Principal Unity Engineer specializing in gameplay, mobile, and XR real-time systems

Israel23y exp
DreamForge GamesThe Art Institute of California - San Francisco

Unity engineer with deep gameplay AI and multiplayer networking experience: built lethal, squad-coordinated NPC combat AI using behavior trees/blackboards, and re-architected a PvP title from Photon-style peer networking to a server-authoritative FishNet dedicated-server model with PlayFab matchmaking. Also integrated multiple open-source LLM pipelines (3D asset generation via Trellis, TTS, music) into dockerized, autoscaling cloud endpoints and shipped an iOS + visionOS/Vision Pro experience featuring BCI-driven input and on-device TensorFlow inference.

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Arjun Shrestha - Intern AI/GenAI Engineer specializing in NLP, RAG, and Snowflake Cortex in Columbus, Ohio

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.

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Satish Kumar Reddy - Mid-level AI/ML Engineer specializing in NLP, computer vision, and MLOps in Remote, NJ

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%.

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chandankumar ramamurthy - Junior Full-Stack Engineer specializing in LLM-powered products in Washington, D.C.

Junior Full-Stack Engineer specializing in LLM-powered products

Washington, D.C.3y exp
Data Science for Sustainable Development (DSSD)George Washington University

Built multiple systems from scratch at DSSD and Aglint, including an NGO sustainability reporting dashboard and a production LLM-powered phone screening agent using Twilio/Retell AI with RAG grounded in PostgreSQL candidate/job data. Strong focus on real-world reliability: guardrails, monitoring, and lightweight eval/regression loops that reduced recruiter score overrides by ~30%. Currently on OPT through May 2026 (plans STEM OPT extension) and committed to relocating to NYC for in-person work; seeking $90k–$120k base with meaningful equity for founding engineer roles.

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Anil Babu Bollina - Senior Computer Vision Engineer specializing in industrial automation and 2D/3D perception in Nashville, TN

Senior Computer Vision Engineer specializing in industrial automation and 2D/3D perception

Nashville, TN8y exp
Universal RoboticsUniversity of Houston-Clear Lake

Machine-vision engineer who designed an end-to-end inline inspection station for white wood pallets, combining laser line profilers with 2D color line-scan imaging to detect protruding nails (~2mm threshold) at conveyor speeds. Solved real production constraints (lighting reflections, per-trigger depth/color alignment, barcode tracking) and improved system accuracy from ~80% to 99.5% using barcode symbology changes and Keyence reader AI features.

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Mrudula Devaguptapu - Mid-Level Software/AI Engineer specializing in backend systems, data pipelines, and RAG automation in United States

Mid-Level Software/AI Engineer specializing in backend systems, data pipelines, and RAG automation

United States3y exp
360DMMC ConsultingSaint Louis University

Backend engineer with experience modernizing high-traffic subscription and payment systems (TCS) by moving to event-driven Spring Boot microservices with Kafka, adding idempotency/state management to eliminate duplicate processing. Built and scaled FastAPI services for AI automation workflows (360DMMC) with versioned contracts, JWT security, and strong observability, and has led live refactors using feature flags, parallel runs, and data reconciliation.

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Nidhi Sura - Junior Software Engineer specializing in AI platforms, distributed systems, and cloud infrastructure in Dublin, CA

Nidhi Sura

Screened

Junior Software Engineer specializing in AI platforms, distributed systems, and cloud infrastructure

Dublin, CA1y exp
Articul8 AIStevens Institute of Technology

Software engineer with limited robotics background but deep experience building end-to-end document ingestion and image understanding systems, including a CAD-specific pipeline using a custom model to extract components and bounding boxes for user-facing visualization and Q&A. Also brings strong infrastructure/DevOps skills (Docker, Kubernetes, GitHub Actions, Terraform) with emphasis on reliability, cost optimization, and uptime.

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Ashay Panchal - Mid-level Software Engineer specializing in AI-driven distributed systems in San Jose, CA

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).

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Vikram Sandigaru - Mid-level AI Engineer specializing in AI agents, RAG pipelines, and LLM evaluation in Boston, US

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.

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Kundhana Paruchuru - Mid-level Data Scientist specializing in ML, LLM pipelines, and MLOps in Remote, USA

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%.

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Nagendra Reddy Palugulla - Mid-level Machine Learning Engineer specializing in LLMs, RAG, and MLOps in Florida, United States

Mid-level Machine Learning Engineer specializing in LLMs, RAG, and MLOps

Florida, United States4y exp
Community Dreams FoundationUniversity of Houston

Built and shipped a production real-time content moderation platform for Zoom/WebEx-style meetings, combining Whisper speech-to-text with fast NLP classifiers and REST APIs to flag hate speech, bias, and HIPAA-related content under strict latency constraints. Demonstrates strong MLOps/infra depth (Airflow, Kubernetes, Terraform/Helm, observability) and a pragmatic approach to reducing false positives via threshold tuning, context validation, and hard-negative data—while partnering closely with compliance and product stakeholders.

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