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Vetted Machine Learning Professionals

Pre-screened and vetted.

Machine LearningPythonDockerSQLAWSCI/CD
NK

Nishoak Kosaraju

Intern Data Scientist specializing in machine learning and trustworthy AI

Newark, NJ1y exp
AmazonCarnegie Mellon University
Cloud ComputingComputer VisionData AnalysisData StructuresDeep LearningDocker+54
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DS

Donovan Sproule

Intern Machine Learning Engineer specializing in systems, kernels, and GPU computing

2y exp
AppleColumbia University
Anomaly DetectionCC#C++CUDADeep Learning+65
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JH

Jiayang Hong

Intern Machine Learning Engineer specializing in LLM systems and recommendation/search

Shanghai, China0y exp
MicrosoftUC Berkeley
A/B TestingAzure DevOpsBERTCI/CDDeep LearningDocker+58
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SM

Sourabh Majumdar

Mid-Level Software Engineer specializing in Ads Serving and Machine Learning Systems

Mountain View, CA4y exp
GoogleUniversity at Buffalo
PythonCC++JavaRGo+35
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MT

Muhammad Tareen

Senior Software Engineer specializing in cloud platforms, data pipelines, and ML

Seattle, WA6y exp
MicrosoftMcMaster University
Amazon CloudFrontAmazon DynamoDBAmazon EC2Amazon EMRAmazon EKSAmazon Kinesis+116
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SA

SURESH ATTULURI

Executive Software Engineering Leader specializing in AI/ML, cloud platforms, and distributed systems

Greater Seattle Area, WA27y exp
Wheels UpIIT Madras
Machine LearningPredictive ModelingDatabricksMicroservicesDistributed SystemsKubernetes+66
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JS

Joshua Seiden

Screened ReferencesStrong rec.

Executive Technology & Product Leader specializing in emerging tech commercialization

Centennial, Colorado33y exp
AT&TUniversity of Colorado Boulder

“Startup operations/product advisor and long-time accelerator mentor who has helped multiple early-stage companies become enterprise-ready—shifting teams to customer-driven roadmaps and implementing CI/Agile delivery processes. Notably supported an Israeli company in landing a Fortune 30 customer before it later IPO’d on NASDAQ, and helped an Australian startup operationalize delivery to secure deployment with a major telecom and sports league.”

AgileBudget managementComputer visionMachine learningProgram managementRobotics+100
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BS

Brian Sanders

Screened

Senior Backend Engineer specializing in GenAI, LLMs, and scalable data pipelines

Chicago, IL12y exp
SnapsheetTexas Tech University

“Backend/ML platform engineer from Snapsheet who owned production Python services and data pipelines for insurance claims, including an AI document classification/summarization FastAPI service on ECS/Fargate processing 1M+ documents/year. Strong in AWS infrastructure (Terraform, CI/CD, secrets/IAM, autoscaling), Glue/PySpark ETL with schema evolution controls, and legacy SAS-to-microservices modernization with safe, feature-flagged rollouts and measurable performance wins.”

PythonDjangoFastAPIFlaskJavaScriptTypeScript+160
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CH

Cedric Hollande

Screened

Junior Robotics Engineer specializing in autonomous systems and controls

Philadelphia, PA6y exp
University of PennsylvaniaUniversity of Pennsylvania

“Robotics software engineer/research lead building an off-road mobile base, owning system integration across mechanical/electrical/embedded and developing controls + motion planning deployed from simulation to hardware with ROS 2/ROS 2 Control. Has deep ROS 2 experience (NAV2, MoveIt) and built a GridMap-based off-road elevation-to-traversability mapping stack using nonlinear optimization; also tuned real robots using Vicon and developed a quadcopter geometric/PID controller.”

RoboticsROS 2PythonCC++Java+81
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AI

Asif Iqbal

Screened

Executive Digital & Technology Leader specializing in global platform modernization

Tempe, AZ32y exp
MobivityUniversity of Michigan

“Explored a digital notarization startup concept in 2020 that stalled due to COVID-era inability to secure VC seed meetings; later saw the market validate the idea via a comparable acquisition (~$57M, per candidate). Now more interested in driving innovation and simplifying complex customer experiences within an established organization, using a highly structured, metrics-driven product execution approach.”

Cloud-native architectureE-commerceProduct managementCost optimizationBudget managementRisk management+95
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SM

Shant Mardigian

Screened

Executive Engineering Leader specializing in scalable streaming, media supply chain, and AI operations

19y exp
DisneyUCLA

“Tech executive with Disney experience who has repeatedly scaled and restructured engineering organizations (from 4 to 30 and up to 100+), using OKRs/KPIs to drive business-aligned roadmaps. Hands-on with architecture and platform strategy, including adopting MongoDB Atlas to centralize transactional data and building shared core services (security/permissions, auditing, compliance) to increase product velocity across distributed teams.”

Microservices architectureCloud-native architectureAWSInfrastructure as CodeDevOpsAutomation+93
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JF

Jeffery Faneuff

Screened

Executive Engineering Leader specializing in AI-driven SaaS and IoT platforms

Los Angeles, CA22y exp
VantivaBabson College

“Engineering leader who built and delivered an IoT smart-spaces platform for the self-storage and smart-living domains, translating customer requirements into architecture, capability maps, and a multi-milestone roadmap. Personally stood up missing AI/ML capabilities (including churn prediction) using Databricks (Delta Lake/MLflow), enabling follow-on features like energy optimization and security/anomaly detection. Scaled an org from 20 to 80+ with disciplined Agile planning (Jira Advanced Roadmaps/Confluence) and strong executive/customer-facing leadership during high-stakes customer commitments.”

AgileAndroidAngularJSApache TomcatAWSAWS CloudFormation+163
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PV

Parth Vadera

Screened

Senior AI/ML Data Scientist specializing in recommender systems, LLMs, and MLOps

Tracy, CA11y exp
LinkedInNortheastern University

“ML/NLP leader with 12+ years of impact across LinkedIn, TikTok, and Levi's, building and productionizing multimodal recommendation and embedding-based search systems. Deep experience in entity resolution, vector retrieval, and rigorous evaluation, with cloud-native deployment/monitoring (MLflow, Airflow, SageMaker/Lambda, Azure ML, Kubernetes) and demonstrated double-digit relevance gains at millions-of-users scale.”

PythonCC++JavaJavaScriptR+158
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SA

Shiva Arcot

Screened

Director of Security & Data Platform Engineering specializing in AI-driven cloud security

Sunnyvale, CA24y exp
ProofpointSanta Clara University

“Player-coach engineering leader focused on scalable data security scanning and risk detection in hybrid cloud, owning architecture and core implementation of an incremental/parallel DSPM scanning engine. Shipped production improvements including 60% lower scan latency and 30% fewer false positives, with strong emphasis on correctness under concurrency, multi-tenant observability (SLOs/burn-rate alerts), and disciplined rollout practices (feature flags, shadow scans, canaries).”

Anomaly DetectionApache AirflowApache CassandraAWSAWS GlueBusiness Intelligence+126
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DN

Dennis Noto

Screened

Executive Technology & Security Leader specializing in FinTech, AI platforms, and enterprise modernization

Denver Metro Area36y exp
Etana CustodyUniversity of Oklahoma

“Technology transformation leader who builds board-approved roadmaps and scales engineering orgs with strong Agile execution. Led large modernization efforts (e.g., Scottrade: 3,000 programs/4M LOC in 18 months) and scaled POCs into enterprise SaaS platforms using Docker, Kubernetes, Helm, and Terraform for high-concurrency workloads.”

AgileAWSBatch processingCC#C+++266
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KM

Kaushik Mukherjee

Screened

Executive technology leader specializing in search, ads, and data/AI platforms

Bangalore, India
super.moneyPES Institute of Technology

“Engineering/technology leader with payments (UPI) scale experience who built fraud and growth systems for tens of millions of daily transactions while keeping CAC and cost guardrails. Scaled an engineering org from 12 to 155 in a year using platform + pod structures, and institutionalized canary deployments with auto-rollback (cutting degradations ~75%) while leveraging GenAI for code and test automation.”

Data analyticsSemantic searchPerformance optimizationTeam managementSDLCFraud detection+64
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AS

Alexander Schaab

Screened

Executive Technology & Product Leader specializing in ADAS and software-defined vehicles

Cupertino, CA14y exp
CARIADUniversity of Cooperative Education

“Automotive technology leader who has driven ADAS/autonomous driving (L2++ to L4) and AI-assistance roadmaps for Mercedes and Volkswagen Group. In current role, built a software-defined vehicle organization from a handful of people to ~150 supporting VW, Porsche, and Audi, while setting scalable architecture foundations across brands and vehicle classes.”

AutomationBudget ManagementCollaborationNode.jsProgram ManagementProject Management+68
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SP

Santhana Parthasarathy

Screened

Executive Engineering Leader specializing in SaaS, Security/Identity, and AI/ML

Miami-Fort Lauderdale, FL26y exp
BlackCloakSan José State University

“Engineering leader (ActiveCampaign, Yalo) with a track record of scaling both systems and orgs: grew an engineering team from 90+ to 200+ (30+ scrum teams) while re-architecting a marketing automation platform from batch to near real-time. Led major infrastructure shifts (RabbitMQ to Kafka, multi-region redundancy) and reports outcomes including 600%+ throughput gains, 99.99% uptime, and business growth from ~80K to 185K customers with revenue surpassing $200M over ~3 years.”

Large Language Models (LLMs)Deep LearningDevOpsCRME-commerceiOS+75
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KW

Kenadi Waymire

Screened

Intern Embedded Software Engineer specializing in RF/SDR and robotics systems

Schaumburg, IL1y exp
Motorola SolutionsCaltech

“Robotics student who built a fully autonomous "Pacman" robot car using ROS 2, integrating LiDAR/IMU sensing with localization, autonomous driving, and a custom RRT + A* planner. Demonstrated practical embedded optimization on an RP2040 by balancing replanning frequency with safety via rapid collision checks.”

PythonCC++C#JavaMATLAB+91
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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.”

PythonFastAPIFlaskRSQLJava+204
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YW

Yishi Wang

Screened

Junior Machine Learning & Data Science professional specializing in LLMs and analytics

Chicago, IL3y exp
MintelNorthwestern University

“Amazon internship experience building production GenAI analytics for the returns organization: a multi-agent LLM+RAG system that let analysts query multiple heterogeneous data sources in natural language without hand-written SQL. Also built and operationalized four Apache Airflow DAGs for large-scale ETL, emphasizing observability and freshness-aware metadata to keep outputs accurate and up to date.”

A/B TestingAWSAWS LambdaBERTBusiness IntelligenceC+++125
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HD

Hovannes Daniels

Screened

Executive Data & AI Leader specializing in healthcare analytics transformation

Oakland, CA26y exp
Kaiser PermanenteCalifornia State University, Long Beach

“Operations/finance transformation leader with experience in large healthcare organizations (e.g., PacifiCare and KP), brought in to stabilize and modernize operating cadence during high-change periods. Known for applying lean/agile methods (value-stream mapping, 2-week sprints, kanban, RACI) to build KPI single-sources-of-truth and scalable analytics operating models, delivering 40%+ cycle-time/rework reductions and improved forecasting/decision velocity.”

Data GovernanceComplianceForecastingPerformance ManagementProduct ManagementRisk Management+93
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