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Vetted MLflow Professionals

Pre-screened and vetted.

JJ

Mid-level AI/ML Engineer specializing in LLM evaluation, RAG, and GPU-accelerated inference

CA, USA5y exp
Scale AIMissouri State University
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VR

Intern Software Engineer specializing in Generative AI and RAG systems

3y exp
MicrosoftUniversity of Massachusetts Amherst
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PK

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

6y exp
MetaPace University
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SG

Mid-level AI/ML Engineer specializing in multimodal and generative AI at scale

San Francisco, CA6y exp
MetaWilmington University
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HR

Senior Data Analytics & Applied ML Engineer specializing in LLMs, RAG, and MLOps

India6y exp
AmazonSan José State University
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BG

Mid-level Machine Learning Engineer specializing in MLOps and scalable ML pipelines

Charlotte, NC5y exp
AppleMarist College
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SS

Mid-level AI/ML Engineer specializing in NLP, transformers, and RAG systems

Overland Park, KS4y exp
KPMGUniversity of Central Missouri
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KS

Senior Software Engineer specializing in AWS-native backends and AI/ML

Denver, CO11y exp
WestLinkRice University
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RC

Senior Data/GenAI Engineer specializing in cloud-native ML, RAG, and real-time data platforms

Richardson, TX8y exp
ToyotaTexas A&M University
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SV

Mid-level AI/ML Engineer specializing in recommendation, retrieval, and MLOps

San Francisco, CA5y exp
MetaConcordia University
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GM

Gagan Mundada

Screened

Intern Machine Learning Engineer specializing in multimodal AI and evaluation benchmarks

San Diego, CA2y exp
McAuley Lab, UC San DiegoUC San Diego

ML-focused candidate with beginner ROS/ROS2 experience (custom pub-sub nodes; TurtleBot3 SLAM simulation debugging via topic inspection and transform/orientation checks). Has research/project exposure to LLM training approaches (GRPO with pseudo-labels using Hugging Face TRL on Qwen/Llama) and uses Docker/Kubernetes + CI/CD to run ViT saliency-attention/compression workloads on UCSD Nautilus infrastructure.

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SN

Mid-level AI/ML Engineer specializing in NLP, graph models, and MLOps for FinTech and Healthcare

Remote, USA5y exp
StripeKent State University

AI/ML engineer who has deployed production LLM/transformer-based systems for merchant intelligence and fraud/support optimization, delivering +27% merchant engagement and +18% payment success. Deep experience in privacy-preserving, PCI DSS-compliant data/ML pipelines (Airflow, AWS Glue, Spark, Delta Lake) and scalable microservices on Kubernetes, plus proven cross-functional delivery in healthcare claims analytics at UnitedHealth Group (12% HEDIS claim reduction).

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JT

Justin Turner

Screened

Executive Technology Leader (CTO/CIO/CISO) specializing in cloud, security, and data platforms

Tampa, FL29y exp
OnMedTampa Technical Institute

CTO-level technology leader with experience building end-to-end tech strategy and roadmaps, modernizing legacy environments in healthcare (GenesisCare), and scaling engineering into large global teams (Amadeus). Built a DevOps organization at Syniverse for the Visibility Suite, implementing Kubernetes/Terraform/Chef automation that drove ~75% faster deployments, and is known for staying hands-on (including data center work) while leading strategically.

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SS

Shuju Sun

Screened

Mid-Level Software Engineer specializing in real-time data pipelines and ML deployment

PA, USA4y exp
VanguardUSC

Ticketmaster data engineer who built CDC-driven Kafka pipelines feeding Snowflake for analytics and data science teams. Hands-on in production operations—scaled Kafka during sudden playoff-driven transaction spikes and improved monitoring for preemptive scaling. Known for using small-batch experiments and quantitative metrics to align stakeholders and drive cost-saving architecture changes (e.g., buffering to reduce AWS Lambda invocation frequency).

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SL

Mid-level Machine Learning Engineer specializing in MLOps and multimodal AI

KS, USA5y exp
AppleUniversity of Central Missouri

ML/AI engineer focused on production-grade model reliability: built a monitoring and validation framework to detect drift, trigger anomaly alerts/retraining, and maintain consistent performance for device intelligence workflows at scale. Strong MLOps background with Python pipelines, Docker/Kubernetes deployments, Airflow orchestration, and real-time monitoring dashboards; experienced partnering with product managers to deliver business-facing insights.

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PP

Senior AI Engineer specializing in LLMs, RAG, and multimodal NLP

Austin, TX5y exp
Health Care Service CorporationUniversity of Florida

Built a production LLM/RAG assistant for insurance/health claims agents that ingests 100–200 page patient PDFs via OCR (migrated from local Tesseract to Azure Document Intelligence) and delivers grounded claim detail retrieval plus summaries with PII/PHI guardrails. Experienced orchestrating large workflows with Celery worker pipelines and AWS Step Functions (S3-triggered, Fargate-based batch inference/accuracy aggregation), and collaborates closely with non-technical SMEs (claims agents/nurses) through shadowing, iterative demos, and SME-defined evaluation.

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JY

Jiacheng Yin

Screened

Intern Software Engineer specializing in data engineering and AI agent systems

Beijing, China1y exp
JD.comCornell University

AI engineer at Anote.ai who built and shipped a production multi-agent LangGraph/LangChain/Ray RAG platform for enterprise search and workflow automation, supporting 3 commercial products and 100+ developers. Drove measurable gains (30% accuracy improvement, lower latency) and improved reliability with Redis-based state checkpointing, message-queue synchronization, and Milvus retrieval optimizations, while partnering with PMs/clients to add transparency features like confidence scores and real-time logs.

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SB

Intern Machine Learning Engineer specializing in LLMs, RAG, and search systems

Schaumburg, IL2y exp
PaylocityCarnegie Mellon University

Built and shipped production improvements to a Paylocity RAG-based AI assistant, redesigning retrieval into a hybrid HNSW + keyword pipeline and using tuned RRF to fuse rankings—cutting latency by ~2s and reducing token usage by ~5000. Previously spearheaded Apache Airflow integration across ETL pipelines at Acuity Knowledge Partners, creating reusable templates and automated triggers to reduce manual job monitoring.

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SP

Mid-level Machine Learning Engineer specializing in MLOps, computer vision, and generative AI

Texas, USA4y exp
TeslaUniversity of Utah
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GS

Senior Python AI/ML Engineer specializing in MLOps, data engineering, and LLM applications

Austin, TX12y exp
Elevance HealthUniversity of Texas at Austin
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MS

Mid-Level Software Engineer specializing in backend, distributed systems, and AI/ML platforms

Atlanta, GA5y exp
Georgia State UniversityGeorgia State University
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