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Vetted Amazon SageMaker Professionals

Pre-screened and vetted.

Amazon SageMakerPythonDockerSQLCI/CDKubernetes
DA

Deepti Ahlawat

Mid-level Machine Learning Engineer specializing in Generative AI and LLM applications

USA6y exp
OpenAINJIT
PythonPyTorchTensorFlowHugging Face TransformersLangChainOpenAI+69
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SC

Sai Chandra Bandi

Screened

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

CA6y exp
Scale AIUniversity of Texas at Arlington

“Built and productionized a real-time enterprise RAG pipeline to improve factual accuracy and reduce LLM hallucinations by grounding responses in constantly changing internal knowledge bases (policies, manuals, FAQs). Experienced in orchestrating end-to-end ML workflows (Airflow/Kubernetes), handling messy multi-format data with schema enforcement (Pydantic/Hydra), and maintaining freshness via streaming incremental embeddings plus batch refresh. Also delivers applied ML solutions with non-technical teams (marketing/CRM) for segmentation and personalized engagement.”

A/B TestingAmazon CloudWatchApache SparkAWSAWS LambdaBash+167
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KC

Kalyani Chittipolu

Screened

Mid-level Data Engineer specializing in AI/ML platforms and cloud data pipelines

USA4y exp
MetaTexas Tech University

“Built and shipped an LLM-powered data quality assistant that generates maintainable validation checks from metadata while executing validations via Great Expectations, exposed through FastAPI and integrated into Airflow-managed pipelines. Emphasizes production reliability (structured outputs, guardrails, monitoring, versioning, human review) and works closely with compliance/operations teams to deliver clear, auditable, user-friendly AI outputs.”

Machine LearningMLOpsData EngineeringData PipelinesETLData Ingestion+108
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AS

Akshitha Singireddy

Screened

Junior Software Engineer specializing in data engineering and computer vision

Bellevue, WA1y exp
AmazonCarnegie Mellon University

“Former Amazon intern who owned an end-to-end computer vision system to detect package anomalies in fulfillment centers, from data collection/labeling to production deployment on AWS (EC2/S3) with a Streamlit live-monitoring dashboard. Also has ML-in-production experience deploying and updating a recommendation model on Kubernetes (Minikube) with CI/CD via GitHub Actions, plus prior SDE experience with Jenkins-based pipelines and on-prem to AWS migration work using Glue.”

PythonJavaSQLJavaScriptHTMLCSS+66
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LW

LEQUAN WANG

Screened

Intern Applied Scientist / ML Engineer specializing in NLP and conversational AI

Seattle, WA0y exp
AmazonUC Irvine

“LLM/Conversational AI engineer who built a production multi-turn dialogue system using LoRA fine-tuning on LLaMA, cutting training compute/memory by 90%+ while maintaining low-latency inference via quantization and streaming generation. Experienced in orchestrating end-to-end ML workflows with Prefect/Airflow/Kubeflow (including hyperparameter sweeps and W&B tracking) and improving agent reliability through benchmark-driven testing, shadow-mode rollouts, and stakeholder-informed guardrails.”

PythonJavaCC++PyTorchTensorFlow+88
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RK

Ravikanth Kasamsetty

Screened

Executive AI/ML Engineering Leader specializing in cloud-native SaaS and GenAI platforms

23y exp
ServiceChannelPenn State University

“Engineering leader who modernized and unified a fragmented product suite at Milestone via a multi-year cloud-native roadmap, delivering an MVP in three quarters and boosting team velocity by 40% through cross-functional squads. At Prometheum, led a trust-building hybrid architecture (AWS control plane + customer-hosted data plane) using Kubernetes to ensure sensitive enterprise data never left customer networks while remaining cloud-agnostic across providers.”

Machine LearningArtificial IntelligenceGenerative AILarge Language Models (LLMs)Retrieval-Augmented Generation (RAG)LLM Fine-Tuning+176
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SM

Subhash Mothukuru

Screened

Mid-level Machine Learning Engineer specializing in LLMs, generative AI, and MLOps

San Francisco, CA5y exp
Scale AIConcordia University Wisconsin

“Built and shipped a production LLM-powered medical scribe that generates structured clinical visit summaries using RAG, strict JSON schemas, and post-generation validation to reduce hallucinations. Experienced in making LLM workflows deterministic and observable (structured logging/metrics/tracing) and in evaluation-driven iteration with metrics like schema pass rate and edit rate; collaborated closely with clinicians and policy stakeholders at Scale AI to drive adoption.”

A/B TestingAgileApache SparkAWSAWS GlueAWS Lambda+166
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AS

Abhishek Soppanna

Screened

Mid-level DevOps Engineer specializing in cloud-native infrastructure on AWS and Azure

CA, USA5y exp
StripeStevens Institute of Technology

“DevOps/SRE focused on cloud-based distributed systems, with strong hands-on Kubernetes production experience (microservices deployments, Helm, probes, resource tuning, CI/CD and Docker build standardization). Demonstrated end-to-end troubleshooting across application, infrastructure, and networking layers—e.g., isolating degraded storage via node disk I/O metrics and restoring performance by draining the node and replacing the volume. Builds Python automation for operational reliability, including scheduled Kubernetes secrets rotation integrated with an external secret manager.”

AgileAmazon CloudWatchAmazon DynamoDBAmazon EC2Amazon EKSAmazon RDS+108
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SB

Sahil Bansal

Screened

Mid-level Backend & ML Engineer specializing in LLM systems and scalable AI pipelines

Bay Area, CA3y exp
MetaSanta Clara University

“Built and shipped a real-time AI phone agent for small businesses that handles bookings/FAQs/messages using streaming ASR, an LLM with tool-calling, and TTS; deployed to production for multiple paying customers. Demonstrates strong applied LLM reliability practices (tool-first grounding, retrieval, hard-negative testing, and production monitoring) and experience orchestrating multi-step AI workflows with Airflow, Prefect, and AWS Step Functions.”

API GatewayApache AirflowAWSAWS LambdaData EngineeringData Preprocessing+85
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PG

Pankaj Goyal

Screened

Director-level Engineering Leader specializing in FinTech, IAM, and AI/ML platforms

SF Bay Area, CA22y exp
PostLoShri Govindram Seksaria Institute of Technology and Science

“Player-coach backend leader at PostLo who led a major backend architecture upgrade to enable AI-driven features by separating transactional systems from AI workloads (vector embeddings/image validation) and adding async processing for heavy jobs. Also owned production reliability improvements (query/index optimization, workload isolation, monitoring and load testing) and translated an ambiguous retention goal into a shipped cashback rewards feature with auditable transactions.”

AgileAWSBigQueryCachingCI/CDDjango+135
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BW

Brandon Wang

Senior Software Engineer specializing in cloud-native SaaS and event-driven microservices

Houston, TX11y exp
TeladocRice University
A/B TestingAdobe IllustratorAdobe PhotoshopAgileAngularAngularJS+361
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SM

Sania Mohammad

Mid-level Full-Stack Python Developer specializing in FinTech and ML-driven automation

California, USA6y exp
StripeSaint Louis University
PythonNode.jsTypeScriptJavaScriptReactRedux+120
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IG

Ishaan Gupta

Intern Software Engineer specializing in full-stack and AI/ML systems

1y exp
GoogleUCLA
PythonC++CJavaSQLJavaScript+37
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ZD

Zian Dong

Junior Software Development Engineer specializing in AI agents and personalization

Irvine, CA1y exp
AmazonGeorgia Tech
PythonJavaScalaTypeScriptJavaScriptSQL+55
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PW

Ping-Hsuan Wu

Junior Software Development Engineer specializing in AWS cloud and distributed systems

Seattle, US2y exp
AmazonCarnegie Mellon University
Amazon DynamoDBAmazon EMRAmazon SageMakerAmazon S3AWSAWS Lambda+49
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MC

Mohitha Chelikam

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

CA6y exp
PerplexityWebster University
A/B TestingAgileAmazon CloudWatchAmazon EKSAmazon S3Amazon SageMaker+138
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CB

Chaitanya Battula

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

San Francisco, CA6y exp
NVIDIAConcordia University Wisconsin
A/B TestingAgileAmazon BedrockAnomaly DetectionApache SparkAuto-scaling+186
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DW

David Wang

Staff Software Engineer specializing in real-time data pipelines and full-stack platforms

Houston, TX10y exp
SalesforceMonash University
A/B TestingAngularArgo CDAudit LoggingAWSAWS CloudFormation+310
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KS

Kundan Sannapaneni

Mid-level Machine Learning Engineer specializing in MLOps and cloud-native ML systems

Austin, TX3y exp
GoogleUniversity of Colorado Boulder
Machine LearningArtificial IntelligenceSupervised LearningUnsupervised LearningXGBoostLightGBM+151
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VK

Vinya Kumar

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

Bay Area, CA5y exp
ShopifyUniversity of North Carolina at Charlotte
A/B TestingAgileApache KafkaApache SparkAWSAWS Lambda+164
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MJ

Martin Judge

Senior Data Scientist specializing in NLP, LLMs, and Generative AI automation

Waterford, MI12y exp
AbridgeUniversity of Georgia
PythonPyTorchRPandasPySparkSQL+88
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RG

Rohanth Gundu

Senior AI/ML Engineer specializing in LLMs, RAG, and MLOps

San Francisco, CA7y exp
PerplexitySaint Louis University
PythonFastAPIFlaskSQLRJava+113
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RD

Rahul Dewan

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

New York, NY11y exp
C8 HealthGeorgia Tech
Machine LearningMLOpsData EngineeringSnowflakeAWSAPI Gateway+195
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