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Vetted Supervised Learning Professionals

Pre-screened and vetted.

Supervised LearningPythonSQLDockerscikit-learnUnsupervised Learning
YK

Yuvadeep Kolakari

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

IL, USA5y exp
DoorDashIllinois Institute of Technology
PythonJavaJavaScriptTypeScriptObject-Oriented Programming (OOP)Microservices+99
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SM

Shaik Mohammed Ashik

Mid-level Data Scientist specializing in customer analytics, ML pipelines, and churn forecasting

Remote, USA4y exp
TikTokUniversity at Buffalo
PythonPandasNumPySciPySQLSQL Query Optimization+75
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SC

Shreya Chinthala

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

WA, USA3y exp
DoorDashSanta Clara University
PythonJavaJavaScriptTypeScriptObject-Oriented Programming (OOP)Microservices+114
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VP

Venkat Pruthvi Ganji

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

Remote, USA4y exp
SpotifyUniversity of Bridgeport
A/B TestingAgileApache HadoopApache SparkCCI/CD+114
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YV

Yashitha Vilasagarapu

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

Sunnyvale, CA5y exp
Cerebras SystemsUniversity of Cincinnati
Amazon API GatewayAmazon BedrockAmazon CloudWatchAmazon DynamoDBAmazon ECSAmazon EKS+74
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HM

Haripavan Madamanchi

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

6y exp
eBayLamar University
A/B TestingAnomaly DetectionApache AirflowApache KafkaApache SparkAutomation+133
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RA

Ravinandana Appoji

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

USA5y exp
TempusUniversity of North Texas
PythonTensorFlowPyTorchscikit-learnPandasNumPy+66
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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.”

PythonCC++JavaSQLGo+77
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HH

Hachem Hamadeh

Screened

Mid-level Applied AI Engineer specializing in ML systems, MLOps, and industrial analytics

Toronto, Canada5y exp
FreelanceUniversity of Waterloo

“Industrial AI/ML practitioner with experience deploying real-time monitoring and anomaly detection in a regulated Sanofi vaccine manufacturing facility, including root-cause workflows, logging/alerting, and SOP-aligned validation—achieving ~90% faster anomaly detection. Also built Python/NLP-style automation to accelerate instrumentation & control documentation (~40% faster) and delivered end-to-end predictive analytics for an agri-food operations/distribution client using close operator and leadership feedback loops.”

Machine LearningMLOpsGenerative AIPythonSQLTensorFlow+105
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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.”

PythonJavaScalaGoC++Bash+162
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PJ

Pratik Jaiswal

Screened

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.”

PythonPandasNumPyOpenCVStreamlitFlask+100
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DP

Deenanadh Polavarapu

Mid-level Data Scientist specializing in machine learning, analytics, and cloud data pipelines

Herndon, VA3y exp
EpsilonTrine University
PythonPandasNumPyScikit-learnMatplotlibSeaborn+74
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SS

Sai Srinivasa Subrahmanyam Puranam

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

Centennial, CO4y exp
Capital OneUniversity of Colorado Boulder
A/B TestingAnomaly DetectionAWSAWS LambdaBERTCaching+92
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VK

Vamshi Konapuram

Mid-level Machine Learning Engineer specializing in NLP, recommender systems, and MLOps

New York, NY5y exp
EtsyUniversity of Maryland, Baltimore County
PythonPandasNumPyScikit-learnSQLGit+83
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SP

Siddardha Pinnamaraju

Mid-level AI/ML Engineer specializing in NLP, MLOps, and financial risk & fraud analytics

USA4y exp
JPMorgan ChaseFlorida International University
AgileAnomaly DetectionAWSAWS LambdaAzure Data FactoryBERT+120
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MS

Miguel Saldana

Senior AI/ML Engineer specializing in GenAI, MLOps, and healthcare analytics

Chicago, IL13y exp
WezomRice University
A/B TestingAgileAmazon ECSAmazon EKSAmazon RedshiftAnomaly Detection+359
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SU

Shivam Udeshi

Screened

Intern Robotics/ADAS Engineer specializing in perception, sensor fusion, and state estimation

2y exp
Magna ElectronicsUniversity of Michigan

“Robotics software engineer who built a multi-agent dense warehouse mapping system in ROS 2, including LiDAR-camera fusion SLAM, timestamp-based synchronization, and DDS-based inter-robot pose/keyframe exchange under bandwidth constraints. Also applied Gaussian Splatting for selective photorealistic dense reconstruction and optimized real-time performance with node composition, bounded queues, and QoS tuning; experienced with Gazebo/CARLA/Unity simulation and Dockerized ROS 2 deployments.”

C#C++Computer VisionCUDADeep LearningDocker+133
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DB

Dharmik Bhingradiya

Screened

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

TX, USA5y exp
BlackRockTexas A&M University-Kingsville

“AI engineer who built a production RAG-based internal analyst tool at BlackRock, fine-tuning an LLM on proprietary financial data and adding four layers of guardrails (input/retrieval/generation/output) to improve grounding and reduce hallucinations. Implemented a LangChain-based multi-agent orchestration (7 major agents) deployed on AWS ECS, with reliability measured via internal human evaluation, LLM-as-judge, and RLHF/drift monitoring.”

PythonSQLRJavaC++Machine Learning+90
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GB

Ganesh Bandi

Screened

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

USA6y exp
Capital OneUniversity of North Texas

“LLM engineer who has deployed production RAG systems for regulated document QA (PDFs/knowledge bases), emphasizing grounded answers with citations, RBAC, monitoring, and continuous feedback. Demonstrates deep practical expertise in retrieval quality (semantic chunking, hybrid BM25+embeddings, re-ranking), reliability (guardrails, deterministic workflows), and measurable evaluation (golden sets, log replay, A/B tests) while partnering closely with compliance/operations stakeholders.”

A/B TestingAgileAmazon EKSAmazon S3Anomaly DetectionApache Spark+128
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MS

Mohan Shri Harsha Guntu

Screened

Mid-level Data Scientist / Machine Learning Engineer specializing in fraud, risk, and MLOps

Remote, MO7y exp
Northern TrustWebster University

“AI/ML practitioner with Northern Trust experience who has shipped production LLM systems (internal support assistant) using RAG, vector databases, orchestration (LangChain/custom pipelines), and rigorous monitoring/feedback loops. Also built AI-driven fraud detection/risk monitoring solutions in a regulated financial environment, emphasizing explainability (SHAP), audit readiness, and stakeholder trust through dashboards and clear communication.”

PythonRSQLPandasNumPyScikit-learn+137
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SS

Siva Sai Kumar Mogalluru

Screened

Mid-level AI Engineer specializing in Generative AI, MLOps, and NLP for finance and healthcare

Remote, USA4y exp
EYUniversity of South Florida

“Built and deployed a secure, production LLM-based document summarization and risk-highlighting tool for financial auditors, running inside a private Azure environment to protect confidential data. Focused on reliability (hallucination mitigation via retrieval-based prompts and source citations) and validated performance through comparisons to auditor summaries plus a user pilot, cutting review time by about half.”

A/B TestingAgileAnomaly DetectionApache AirflowApache SparkAzure DevOps+138
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SC

Sai Charan Kolla

Screened

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

TX, USA5y exp
BlackRockTexas A&M University-Kingsville

“LLM engineer who built a production document intelligence/RAG pipeline to extract structured data from thousands of unstructured PDFs, cutting manual review time by 60%. Experienced with LangChain and Airflow orchestration plus rigorous evaluation (labeled datasets, prompt testing, HITL review, monitoring) to improve accuracy and reduce hallucinations while partnering closely with non-technical operations stakeholders.”

PythonSQLRJavaC++Machine Learning+99
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