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Vetted Machine Learning Engineers

Pre-screened and vetted.

YR

Mid-level Data Analyst & ML Engineer specializing in GenAI, NLP, and cloud data pipelines

USA5y exp
PalantirPace University
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YK

Mid-level AI Backend Engineer specializing in LLM applications and scalable ML services

IL, USA5y exp
DoorDashIllinois Institute of Technology
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VB

Mid-level Software Engineer specializing in backend systems and LLM applications

Chicago, IL4y exp
Easley-Dunn ProductionsUniversity of Illinois Urbana-Champaign
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SC

Mid-level AI Backend Engineer specializing in LLM applications and scalable ML services

WA, USA3y exp
DoorDashSanta Clara University
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AW

Senior AI Architect specializing in LLMs, RAG, and agentic systems

Round Rock, TX9y exp
Dell TechnologiesNew York Institute of Technology
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VR

Mid-level AI/ML Engineer specializing in GenAI, RAG, and cloud-native ML platforms

Charlotte, North Carolina4y exp
CitibankIndiana Wesleyan University
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VP

Mid-level AI/ML Engineer specializing in recommender systems, NLP, and MLOps

Remote, USA4y exp
SpotifyUniversity of Bridgeport
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YV

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

Sunnyvale, CA5y exp
Cerebras SystemsUniversity of Cincinnati
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SG

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

New York, NY4y exp
Goldman SachsSt. Francis College
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PA

Mid-level AI Engineer specializing in LLM agents, RAG, and enterprise GenAI

Chicago, IL6y exp
Morgan StanleyWichita State University
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RA

Mid-level AI/ML Engineer specializing in NLP/LLMs and computer vision

USA5y exp
TempusUniversity of North Texas
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ST

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

USA4y exp
DatabricksUniversity of Central Missouri
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AM

Abhishikth Meesala

Screened ReferencesStrong rec.

Mid-level AI/ML Engineer specializing in NLP, Generative AI, and fraud detection

Dallas, TX4y exp
PwCCampbellsville University

At PwC, built and productionized an agentic RAG enterprise search assistant over 6M internal documents (8M embeddings), deployed across AWS and GCP. Drove major retrieval gains (72%→92% precision via BM25+dense hybrid with RRF and cross-encoder re-ranking), reduced hallucinations 30%, achieved <2s latency at 50–60K queries/month, and cut support tickets 30%—boosting adoption to 2,500 users by adding source-cited answers.

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HM

Junior AI/ML & Cloud Software Engineer specializing in LLM applications

2y exp
Randomwalk.AIUniversity of Illinois Urbana-Champaign

AI engineer (2+ years; pursuing an online MS at UIUC) who has shipped an AI-powered voice screening platform end-to-end on GCP with strong production monitoring and measurable hiring-process impact (80% reduction in unqualified pass-through; ~50+ hours saved per role). Also built and deployed an AWS-based context-aware hybrid search system using OpenSearch as a vector store, and has hands-on experience with multi-agent LLM orchestration (ReAct) and structured-output guardrails.

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SK

Mid-level Machine Learning Engineer specializing in industrial deep learning and predictive control

Houston, TX5y exp
oPRO.aiCarnegie Mellon University

AI engineer building and deploying deep-learning-based optimization/control systems for petrochemical plants, with a focus on maintaining operational stability under real-world constraints. Core contributor to model and inference design; introduced a stability-focused non-linear objective and sped up second-layer optimization via on-the-fly first-order approximations. Experienced using Kubernetes for end-to-end testing and effective in translating customer expectations into measurable evaluation plots for non-technical stakeholders.

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MM

Max Matkovski

Screened

Junior Machine Learning Engineer specializing in data pipelines and applied AI

San Francisco Bay Area, CA3y exp
Ontra MobilityGeorgia Tech

Built a production AI agent for phishing fraud detection using n8n orchestration, Claude (Sonnet 4/MCP), VirusTotal, and JavaScript formatting to generate and deliver email-based reports via Gmail. Has experience evaluating detection accuracy against known examples, iterating via feedback, and presenting AI solutions to non-technical teams.

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SS

Shayan Shokri

Screened

Intern ML Engineer specializing in LLMs and NLP research

Seattle, WA0y exp
TruvetaCity University of New York

ML/LLM practitioner with experience at Truveta building an LLM-based evaluation framework; identified non-overlapping evaluator failure modes and proposed an ensemble approach that enabled scaling training data and drove ~5% performance gains across multiple internal projects. Strong focus on robustness to distribution shift (augmentation/domain adaptation/meta-learning) and production reliability via monitoring, drift detection, and safe fallbacks.

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AK

Alp Komban

Screened

Junior Machine Learning Engineer specializing in computer vision for medical imaging

Mountain View, CA2y exp
Smartlens Inc.Cornell University

Applied ML/LLM practitioner working in healthcare-facing products, using RAG and LoRA fine-tuning on medical data and implementing production monitoring (confidence scoring) for clinician oversight. Has hands-on experience debugging agentic/LLM pipelines (including OCR preprocessing fixes) and regularly delivers technical demos to doctors, investors, and conferences—contributing to adoption and even helping close a funding round through end-to-end pipeline walkthroughs.

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HS

Haider Shah

Screened

Principal AI/ML Architect specializing in GenAI, LLMs, RAG, and Agentic AI

California, USA13y exp
PineconePreston University

FinTech/AI engineer who has shipped an end-to-end discrepancy-detection product for financial managers using Next.js, FastAPI/GraphQL, Pinecone, and AWS (with dev/staging/prod, observability, A/B testing, and documentation). Also built an AI-native “AI Genesis” system with agentic cyclic workflows, routing, and tool use, and has experience modernizing legacy systems via the strangler fig pattern while coordinating with senior stakeholders on a 5G autonomous simulation platform.

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PJ

Mid-level AI/ML Engineer specializing in financial services ML and MLOps

Remote, USA4y exp
M&T BankUniversity of South Florida

ML engineer/data scientist with M&T Bank experience who built a production reinforcement-learning portfolio analytics tool for wealth management, emphasizing near real-time performance via batch/serving separation and robust generalization through stress-scenario backtesting and RL regularization. Strong MLOps background (Airflow, Grafana, MLflow) and proven ability to drive adoption with non-technical stakeholders using KPI alignment and SHAP-based explanations.

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PK

Staff Machine Learning Engineer specializing in LLM agents and ML systems

San Fransico, CA6y exp
InfosysGeorgia State University
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