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Vetted TensorFlow Professionals

Pre-screened and vetted.

B`

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

Albany, NY4y exp
Northern TrustUniversity at Albany
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RM

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

4y exp
Development Dimensions InternationalUniversity at Buffalo
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AU

Senior Data Scientist and Machine Learning Researcher specializing in NLP, LLMs, and MLOps

Lubbock, TX9y exp
Texas Tech UniversityTexas Tech University
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SD

Junior Full-Stack Developer specializing in Java/Spring Boot and Angular

1y exp
RyderUniversity of Texas at Dallas
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SS

Senior Software Engineer specializing in robotics, computer vision, and scientific instrumentation

Dallas, TX15y exp
DCG SystemsUniversity of London
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NB

Mid-level Generative AI Engineer specializing in LLM, RAG, and multimodal enterprise solutions

Maineville, OH3y exp
OneMain FinancialCentral Michigan University
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JM

Mid-level AI/ML Engineer specializing in Generative AI and RAG assistants

USA4y exp
EPAMSacred Heart University
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KK

Mid-level Machine Learning Engineer specializing in healthcare and financial AI

Jersey City, NJ4y exp
Change HealthcarePace University
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SA

Mid-level AI Engineer specializing in LLM agents and production ML systems

Portland, ME3y exp
Institute for Experiential AINortheastern University
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IB

Junior Software Engineer specializing in backend, microservices, and cloud

San Francisco, CA2y exp
KarmeqSyracuse University
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DP

Executive AI Architect specializing in low-power edge/embedded AI systems

Austin, TX18y exp
AMBiQUniversity of Maryland, Baltimore County
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AZ

Senior Full-Stack Software Engineer specializing in Python, React, and LLM-powered applications

Woodbridge, Virginia, US7y exp
HealthEdge
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SK

Sai Krishna Sriram

Screened ReferencesStrong rec.

Mid-level Generative AI & ML Engineer specializing in production LLM and RAG systems

Temecula, California3y exp
CLD-9University of Colorado Boulder

AI/ML engineer who shipped a production blood-test report understanding and personalized supplement recommendation product, using a LangGraph multi-agent pipeline on AWS serverless with OCR via Bedrock and RAG over vetted clinical research. Also built end-to-end recommender system pipelines at ASANTe using Airflow (ingestion, embeddings/features, training, registry, batch scoring/monitoring) with KPI reporting to Tableau, with a strong focus on safety, evaluation, and measurable reliability.

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DK

Dhruv Kamalesh Kumar

Screened ReferencesStrong rec.

Mid-level Generative AI Engineer specializing in LLM agents and RAG applications

Boston, MA4y exp
Burnes Center for Social ChangeNortheastern University

GenAI builder and technical lead with ~2 years of hands-on production experience, including GENIE (a GenAI sandbox for ~44,000 Massachusetts public-sector employees) and A-IEP, a multilingual platform helping parents understand complex IEP documents (cut processing from ~15 minutes to ~2 and used by 1,000+ parents). Strong in RAG/agentic architectures, AWS serverless + Step Functions orchestration, and rigorous evaluation/guardrails for reliable real-world deployments.

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SG

Sahil Gupta

Screened ReferencesStrong rec.

Junior AI Software Engineer specializing in LLM agents, RAG, and healthcare NLP

MA, U.S.A1y exp
AltiusUniversity of Massachusetts Amherst

Backend engineer who built an agentic LLM system for private equity/finance that answers questions over enterprise contracts and documents using a vector-db RAG pipeline. Differentiator is a trust-focused citation framework (with highlighted source text) to reduce hallucinations in high-stakes workflows, plus strong DevOps experience deploying microservices on Kubernetes with Helm/GitOps and building Kafka real-time pipelines.

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PR

Priyanka Ramesh

Screened ReferencesStrong rec.

Junior Full-Stack Software Engineer specializing in Java/Spring Boot and React

Boston, MA2y exp
IpserLabNortheastern University

Backend engineer (IpserLab) who owned Python services for a production quiz/analytics platform, focusing on reliability and low-latency behavior under peak load. Hands-on with Kubernetes + Docker deployments and GitHub Actions CI/CD in a GitOps-style workflow, including solving configuration drift and enabling fast rollbacks. Also implemented Kafka-based event streaming with idempotent consumers and strong observability (lag tracking, structured logging, alerting).

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TA

Tanweer Ashif

Screened ReferencesStrong rec.

Mid-level AI/ML Engineer and Data Scientist specializing in LLMs and MLOps

Buffalo, NY5y exp
University at BuffaloUniversity at Buffalo

Data science/AI intern at University at Buffalo Business Services who built and deployed production systems spanning classic ML and LLM assistants. Delivered real-time competitor intelligence for a Cornell-partnered, $1B beverage launch by scraping/cleaning 5,000+ SKUs and deploying models via API, then built a domain-aware LLM assistant to modernize Excel-based workflows with strong grounding, privacy controls, and sub-5s latency.

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MY

Meng Yang

Screened ReferencesStrong rec.

Staff Software Engineer specializing in distributed systems, cloud platforms, and IoT

Columbus, OH21y exp
M2M Technologies, Inc.California State University, San Bernardino

CTO/Chief Architect who rebuilt an IoT platform from a fragile legacy stack into an AWS-based, multi-tenant cloud-native system supporting 50k+ connected devices and 10M+ monthly events, then layered in real-time data pipelines and ML anomaly detection. Known for tightly aligning roadmaps and OKRs to business KPIs (onboarding speed, uptime, velocity) and for scaling teams into domain-focused pods; previously led a shift from LAMP to event-driven Node.js microservices using MQTT and message queues.

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JS

Joshua Sylvester

Screened ReferencesStrong rec.

Senior Machine Learning Researcher/Engineer specializing in temporal modeling and production ML systems

8y exp
Darwin Deason Institute for Cybersecurity (SMU)Southern Methodist University

Backend engineer who built and evolved a startup data-processing backend (Express.js/MySQL) handling millions of user data points, with a microservices pipeline integrating multiple social media APIs. Emphasizes reliability and security through comprehensive testing, robust error/retry handling for sequential pagination constraints, and tight IAM/JWT/OAuth-based access controls.

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