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Vetted Model Fine-tuning Professionals

Pre-screened and vetted.

RD

Staff Software Engineer specializing in AI/ML and data engineering for healthcare automation

New York, NY11y exp
C8 HealthGeorgia Tech
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MW

Senior Agentic AI & Backend Engineer specializing in LLM platforms and multi-agent systems

10y exp
MoveworksRutgers University
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PD

Senior Data Scientist specializing in Generative AI and LLM evaluation

New York, NY3y exp
AdobeColumbia University
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SR

Senior Machine Learning & GenAI Engineer specializing in LLM systems and data pipelines

San Francisco, CA7y exp
DatabricksIndiana Tech
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AB

Mid-level Data Scientist / GenAI & ML Engineer specializing in LLMs, RAG, and recommendations

4y exp
MetaSouthern University and A&M College
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ZZ

Senior Applied Scientist specializing in LLMs, GenAI systems, and AutoML

New York, NY8y exp
AmazonUniversity of Pennsylvania
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MG

Senior Applied ML Scientist specializing in LLMs, ads ranking, and RAG systems

Santa Ana, CA8y exp
PinterestUC Berkeley
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LC

Senior AI/ML Engineer & Data Scientist specializing in NLP, entity resolution, and knowledge graphs

Remote8y exp
PlayStationUniversity of Virginia
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PK

Mid-level Machine Learning Engineer specializing in LLMs, ranking, and scalable ML systems

TX, USA3y exp
MetaUniversity of Texas at Arlington
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SY

Mid-level AI/ML Engineer specializing in LLMs, multimodal systems, and MLOps

5y exp
MetaEast Texas A&M University
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NK

Intern Data Scientist specializing in machine learning and trustworthy AI

Newark, NJ1y exp
AmazonCarnegie Mellon University
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SS

Mid-level AI/ML Engineer specializing in LLMs, RAG, and multi-agent systems

California, USA5y exp
Google DeepMindUniversity of North Texas
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HK

Harish Kasu

Screened

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

San Francisco, CA5y exp
NVIDIATexas A&M University-Kingsville

AI/LLM engineer with production experience at NVIDIA and Microsoft, including building a RAG-based enterprise knowledge assistant that improved accuracy by 42% and scaled to thousands of queries. Deep in inference optimization (TensorRT-LLM, Triton, quantization, speculative decoding) and MLOps/observability (Prometheus/Grafana, MLflow, LangSmith), plus orchestration with Kubeflow/Airflow across multi-cloud.

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RD

Mid-level Software Engineer specializing in systems, CUDA, and robotics/AI

Santa Clara, CA2y exp
NVIDIAGeorgia Tech
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BW

Senior Machine Learning Engineer specializing in GenAI, NLP, and recommendation systems

Seattle, WA10y exp
eBayUniversity of Illinois Urbana-Champaign
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SJ

Sumer Joshi

Screened ReferencesStrong rec.

Senior Backend Software Engineer specializing in healthcare platforms and AI/ML tooling

San Francisco, CA10y exp
Juniper NetworksSanta Clara University

Built a chatbot for a learning management system during a Deep Atlas bootcamp by mapping an end-to-end RAG architecture (document ingestion, Qdrant-based retrieval scoring, and LLM response synthesis). Previously at Rally Health/UnitedHealthcare, diagnosed load-related memory spikes with JMeter and improved stability by migrating caching from Guava to Redis, and also supported adoption through UI A/B testing in a technical marketing engineer rotation.

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KM

Kowshika M

Screened

Mid-level AI/ML Engineer specializing in LLM fine-tuning, inference optimization, and AI safety

Santa Clara, CA5y exp
NVIDIAOregon State University

AI/LLM engineer with production experience at NVIDIA, where they fine-tuned and deployed a financial-services chatbot and cut latency ~50% using TensorRT + NVIDIA Triton, scaling via Docker/Kubernetes. Also has consulting experience at Accenture delivering a predictive maintenance solution for a logistics network, bridging non-technical stakeholders with actionable dashboards.

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DS

Executive CTO and Founder specializing in AI platforms and hyper-scale SaaS

South San Francisco, CA26y exp
Deep OriginUC Berkeley

CTO-minded builder seeking to join a startup; previously created an AI-driven platform that abstracted away DevOps and infrastructure for drug discovery researchers. Emphasizes high-leverage, zero-to-one execution with managed cloud/open-source tooling, and a strong reliability/reproducibility mindset validated against existing scientific pipelines.

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AR

Anagha Ram

Screened

Intern AI/ML Engineer specializing in NLP, LLMs, and semantic search

Los Altos, CA2y exp
Columbia UniversityCornell University

Built and deployed a production RAG-based semantic search and summarization system for large legal/technical document sets, owning the full backend (embeddings, vector store, chunking, prompting) and driving a reported 40–60% reduction in manual review time. Experienced with LangChain/LlamaIndex plus Airflow/Temporal-style orchestration, and applies rigorous evaluation/monitoring (A/B tests, drift detection, staged rollouts) to keep agentic systems reliable. Also partnered with a supply-chain manager at TE Connectivity to deliver an AI inventory recommendation tool projected to drive millions in value.

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DH

Dexin Huang

Screened

Junior AI Engineer specializing in LLM systems, RAG, and full-stack automation

Guilford, CT1y exp
Slothful LLC (Iris)Columbia University

Built and deployed an AI receptionist product for field-service businesses (HVAC/electrician), including real-time Jobber scheduling integrations and Twilio-based calling. Combines hands-on customer/operator shadowing with strong production engineering (queueing to handle API limits, rigorous testing/mocking, mirrored prod environment) and cross-layer troubleshooting, driving user adoption through review/override workflows.

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KS

Mid-level AI/ML Engineer specializing in LLMs, RAG, and MLOps

CA, USA4y exp
AnthropicCalifornia State University, Long Beach

ML/LLM engineer who built a production RAG system (GPT-4 + FAISS + FastAPI) to deliver fast, grounded answers from proprietary documents, optimizing for sub-200ms latency and high-concurrency scale. Strong MLOps/observability background: drift monitoring with Prometheus + Streamlit, automated retraining via Airflow, Kubernetes autoscaling, and MLflow-managed model lifecycle, plus inference cost reduction through quantization and structured pruning.

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MJ

Senior AI/ML Engineer specializing in Generative AI, NLP, and RAG systems

Mesquite, TX11y exp
AmazonUniversity of Texas at Dallas

ML/NLP engineer focused on production-grade data and search/recommendation systems: built an end-to-end pipeline that connects unstructured customer feedback with product data using TF-IDF/BERT, Spark, and AWS (SageMaker/S3), orchestrated with Airflow and monitored for drift. Also has hands-on experience with entity resolution at scale and improving search relevance via BERT embeddings, FAISS vector search, and domain fine-tuning validated with precision@k and A/B testing.

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