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Vetted Feature Engineering Professionals

Pre-screened and vetted.

Feature EngineeringPythonSQLDockerscikit-learnTensorFlow
SM

Shuvam Mitra

Screened

Mid-level Data Scientist specializing in anomaly detection and production ML

Pittsburgh, PA4y exp
HondaCarnegie Mellon University

“Interned at Backblaze building production AI systems for incident response and security operations, including an internal LLM-powered incident triage assistant that used Snowflake + RAG over historical tickets/postmortems and delivered results via Slack and a web UI. Emphasizes reliability (PII filtering, grounding, schema validation, fallbacks) and rigorous evaluation/observability (offline replay, partial rollouts, time-to-first-action metrics, Prometheus/Grafana).”

AgileAnomaly DetectionAWSCC++Data Governance+89
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AK

Avinash K

Screened

Mid-level Software Engineer specializing in AI/LLM and distributed systems

Stony Brook, NY4y exp
Creao AIStony Brook University

“Recent internship project at Google Workspace building an LLM-driven Python backend pipeline to extract/enrich NLP features from messy customer web domains and integrate them into a Domain Feature Store for personalization and promotions. Also has hands-on Kubernetes/Docker deployment experience for a Digital Signage SaaS backend with GitHub Actions CI, plus strong streaming-systems knowledge (Kafka exactly-once, schema evolution, Flink scaling) and built an information retrieval system handling 30,000+ cases.”

AngularJSAuthorizationCachingData TransformationDistributed SystemsDocker+129
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JL

jiawei Li

Screened

Intern Applied Scientist specializing in LLM agents for software engineering

0y exp
AmazonUC Irvine

“Applied Scientist intern at Amazon who built a production-adopted LLM-judge to evaluate an agentic chatbot’s intermediate reasoning and tool calls using a knowledge-graph grounding approach. Also published award-winning work (ACM SIGSOFT Distinguished Paper) using LangChain + GPT-4 tools to generate factually grounded commit messages, with rigorous human-centered evaluation metrics.”

PythonJavaRPyTorchScikit-LearnXGBoost+69
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KS

Krishna Sahith Poruri

Screened

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.”

PythonSQLRC++GitClassification+101
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MJ

MARCUS JOHNSON

Screened

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.”

AgileAmazon BedrockAmazon EC2Amazon S3Amazon SageMakerApache Kafka+151
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VY

Vinnie Yerramadha

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

San Francisco, CA6y exp
ShopifyUniversity of North Texas
PythonSQLBashCJavaScriptPHP+173
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RA

Richard Azucenas

Intern Software Engineer specializing in data science and network visualization

Berkeley, CA0y exp
Lawrence Berkeley National LaboratoryUC Berkeley
PythonJavaJavaScriptC++HTMLCSS+48
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SS

Sai Sravanth Segu

Mid-level AI/ML Engineer specializing in recommender systems, fraud detection, and LLMs

Plano, TX5y exp
MetaUniversity of Texas at Arlington
A/B TestingAmazon EC2Amazon RDSAmazon S3Apache AirflowApache Hadoop+94
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DS

Deepit Shah

Entry Software Engineer specializing in AI infrastructure and ML inference systems

Seattle, WA2y exp
AmazonUniversity of Illinois Urbana-Champaign
AWS LambdaApache AirflowArtificial IntelligenceBashC++CI/CD+90
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KR

Karthik Reddy

Mid-level AI/ML Engineer specializing in NLP/LLMs and production ML systems

Allen, TX4y exp
AnthropicUniversity of North Texas
PythonJavaC++JavaScriptBashMachine Learning+95
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PP

Pavankumar Pendela

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

Centerton, AR6y exp
MetaUniversity of the Cumberlands
Machine LearningArtificial IntelligenceGenerative AILarge Language Models (LLMs)GPT-4LLaMA+100
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TR

Thanmayee Reddy

Mid-level Machine Learning Engineer specializing in NLP, recommender systems, and on-device ML

CA, USA5y exp
AppleTexas Tech University
A/B TestingAmazon DynamoDBAmazon EC2Amazon EMRAmazon S3Amazon SageMaker+111
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RP

Rahul Paul

Senior AI/ML Engineer specializing in personalization, recommendations, and forecasting

KS, United States12y exp
TargetKansas State University
PythonJavaSQLBashShell ScriptingMachine Learning+199
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AA

Abdalla Ali

Principal Data Scientist / AI Engineer specializing in healthcare-native AI platforms

New York, NY12y exp
Komodo HealthLewis University
A/B TestingAgileAmazon CloudWatchAmazon DynamoDBAmazon EC2Amazon EKS+207
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RT

Rhutwij Tulankar

Screened ReferencesStrong rec.

Engineering Manager and ML/Data Architect specializing in scalable data platforms and personalization

San Francisco, CA11y exp
RecruiticsRochester Institute of Technology

“Hands-on engineering manager at a marketing company leading a highly senior, distributed team (10 direct reports) while personally coding ~60–70% and owning end-to-end architecture across three interconnected products. Built agentic CRM automation and a reinforcement-learning-driven distribution layer for channel spend/bidding, with a strong focus on scalable design and observability (Prometheus/APM/logging) enabling frequent releases and few production incidents.”

Amazon DynamoDBAmazon ECSAmazon KinesisAmazon RedshiftAmazon S3Amazon SQS+263
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YT

Yifei Tang

Screened

Intern Machine Learning Engineer specializing in vision-language models and robotics

Shanghai, China0y exp
HuaweiUniversity of Pennsylvania

“Robotics software engineer with hands-on experience building a vision-guided grasping pipeline on a 7-DOF Franka arm, implementing gradient-based IK with null-space optimization and RRT* motion planning in ROS1. Strong in sim-to-real deployment and real-world debugging—addressed frame misalignment via hand-eye calibration and centralized TF configuration, and reduced replanning/jitter by tuning a weighted pose filter using rosbag replay and variance/grasp-time metrics. Also built an ESP32-based mobile robot architecture combining embedded decision-tree control with WiFi/web high-level commands.”

Artificial IntelligenceCC++Data CleaningData Structures and AlgorithmsFeature Engineering+96
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GK

Gowri Kajipuram

Screened

Mid-level AI/ML Engineer specializing in LLMs, RAG, and multimodal deep learning

San Francisco, CA5y exp
MetaUniversity of Central Missouri

“ML/LLM engineer who has built and productionized a large multimodal LLM pipeline end-to-end—fine-tuning a 20B+ parameter model with distributed/FSDP training and deploying on Kubernetes via Triton for ~5x throughput. Strong focus on reliability and safety (monitoring with SHAP, guardrails, A/B testing) with reported ~22% relevance lift and reduced harmful/incorrect outputs, plus experience orchestrating ETL/retraining workflows with Airflow across S3/Snowflake/RDS.”

PythonSQLPyTorchTensorFlowScikit-learnXGBoost+158
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VA

Veer Arora

Screened

Junior Data Scientist specializing in ML, NLP, and healthcare analytics

Pleasanton, CA2y exp
Kaiser PermanenteUC Berkeley

“Built and deployed a healthcare NLP application that used an LLM-style physician interface feeding a random forest model to predict treatment plans for hard-to-triage patient subgroups, backed by a Databricks medallion pipeline and heavy feature engineering to address missing/low-integrity data across ~50K patients. Also delivered an earlier Microsoft AI Builder automation that improved transportation bill payment workflows by training non-technical payroll/procurement teams to use automated outstanding-payables reporting.”

PythonSQLPySparkJiraGitPyTorch+74
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YP

YAKKALI PAVAN

Screened

Mid-level Machine Learning & Generative AI Engineer specializing in NLP, CV, and RAG systems

USA6y exp
JPMorgan ChaseUniversity of Houston

“Built and deployed a production LLM-powered RAG document intelligence system used by non-technical enterprise stakeholders, cutting document search time by 40%+ while improving answer consistency. Demonstrates strong MLOps/data workflow orchestration (Airflow, AWS Step Functions, managed schedulers across GCP/Azure) and a metrics-driven approach to reliability, evaluation, and cost/latency optimization with guardrails and observability.”

A/B TestingAlgorithmsAnomaly DetectionAWSBashBERT+241
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CS

Chandra sai kiran Kammari

Screened

Mid-level Machine Learning Engineer specializing in fraud detection and real-time personalization

San Francisco, CA6y exp
StripeUniversity of Tampa

“ML/LLM engineer with Stripe and Adobe experience who productionized a transformer-based Payments Foundation Model for real-time fraud detection at global scale (billions of transactions). Built petabyte-scale ETL/feature pipelines (Spark/EMR, Airflow, dbt, Kafka/Flink) and achieved <100ms multi-region inference (EKS, TorchServe, edge/Lambda, GPU/CPU routing) with strong PCI-DSS/GDPR compliance and explainability (SHAP/LIME), reporting a 64% fraud accuracy improvement.”

PythonPyTorchTensorFlowScikit-learnPandasNumPy+164
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