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Vetted Latency Optimization Professionals

Pre-screened and vetted.

Latency OptimizationPythonDockerCI/CDSQLAWS
BY

Billy Y

Screened

Junior Software Engineer specializing in Full-Stack and GenAI/LLM applications

San Jose, CA2y exp
ZymebalanzBoston University

“LLM/RAG practitioner building clinician-facing AI search and Q&A inside EHR workflows, focused on trust, latency, and safety (grounded answers with citations, PHI controls, encryption/audit logs). Demonstrated real-time incident response for production LLM systems (e.g., fixing a metadata-filter deployment regression to prevent irrelevant results/cross-patient leakage) and strong demo/enablement skills for mixed technical and clinical stakeholders; also shipped a multi-model RAG tool at OrbeX Labs with upload/search/audit features for day-to-day adoption.”

PythonC++JavaCHTMLJavaScript+174
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JC

Jahnavi Chakka

Screened

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

USA5y exp
McKessonSUNY

“Built a production LLM-RAG system at McKesson to let internal healthcare operations teams query large volumes of unstructured operational documents via natural language with source-backed answers, designed with HIPAA/FHIR compliance in mind. Demonstrated strong production engineering across hallucination mitigation, retrieval quality tuning, and latency/scalability optimization, using LangChain/LangGraph and Airflow plus rigorous evaluation/monitoring practices.”

A/B TestingAgileAmazon ECSAmazon EKSAmazon EMRAmazon SageMaker+125
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RJ

Rudraksh Jadhav

Screened

Intern Software Engineer specializing in AI and full-stack web development

Toledo, OH1y exp
SSOE GroupUniversity of Toledo

“Built ReflectlyAI, an AI-powered interview coach, implementing a low-latency Python/Flask backend with modular LLM/Whisper services, retries/fallbacks, caching/batching, and async/background processing. Demonstrates strong PostgreSQL/SQLAlchemy performance tuning (EXPLAIN ANALYZE, composite indexes, selectinload) and multi-tenant isolation patterns (tenant-scoped schemas, tenant_id middleware), reporting ~50% response-time reduction.”

AgileAmazon S3AWSCC#C+++87
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MV

Manish Vemula

Screened

Mid-level Machine Learning Engineer specializing in real-time pipelines and NLP/GenAI

TX, USA4y exp
DiscoverCentral Michigan University

“ML/MLOps practitioner from Discover Financial who built and deployed a real-time AI fraud detection platform (LSTM + VAE) on AWS SageMaker with Docker/FastAPI and Jenkins-driven CI/CD. Demonstrated measurable impact (30% accuracy lift, 25% fewer false alerts) and deep expertise in class-imbalance mitigation, drift monitoring, and orchestration (Airflow/Kubeflow), plus strong stakeholder adoption via Power BI dashboards for fraud/compliance teams.”

AgileAnomaly DetectionAPI IntegrationAWS LambdaAzure Machine LearningCI/CD+101
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GD

Gayatri Devi Dasari

Screened

Mid-level GenAI/ML Engineer specializing in LLM systems and RAG chatbots

Houston, TX3y exp
University of HoustonUniversity of Houston

“Built and shipped a production agentic LLM analytics platform that lets non-SQL business users query relational databases in plain English via a RAG + LangChain/LangGraph workflow and FastAPI service. Emphasizes safety and reliability with guardrails (validation/access control), testing/evaluation frameworks, and performance optimization (caching, monitoring, Dockerized scalable deployment), reducing dependency on data teams and speeding analytics turnaround.”

Amazon CloudWatchAmazon DynamoDBAmazon EC2Amazon S3Amazon SageMakerAuthentication+137
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MN

Meghana Nandivada

Screened

Junior Machine Learning Engineer specializing in production ML systems and MLOps

2y exp
TCSStevens Institute of Technology

“ML/AI engineer (TCS) who built and productionized a customer segmentation and personalized-offer recommendation pipeline end-to-end (data cleaning/feature engineering/clustering through Flask API deployment in Docker with monitoring). Emphasizes reliability and operational rigor via validation checks, periodic retraining, model/API versioning, and latency optimization, and has experience translating marketing KPIs into usable dashboards for non-technical teams.”

PythonSQLJavaScalaMachine LearningMLOps+99
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PS

Ponugoti Sushma

Screened

Mid-level Machine Learning Engineer specializing in IoT, edge AI, and enterprise ML

Texas, USA5y exp
AllstateTexas A&M University-Corpus Christi

“Built and productionized an LLM/RAG question-answering service over technical documentation, focusing on retrieval quality (reranking + IR metrics), latency, and scaling. Experienced orchestrating end-to-end ETL/ML workflows with Airflow/Prefect/AWS Step Functions and improving reliability via parallelism, retries, and shadow testing. Also delivered an explainable healthcare risk-flagging classifier with a stakeholder-friendly dashboard for a non-technical program manager.”

PythonCC++TensorFlowPyTorchScikit-learn+134
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SS

Sumit Sahu

Screened

Mid-level Machine Learning Engineer specializing in computer vision and MLOps on GCP

Atlanta, GA4y exp
NCR VoyixUniversity of Georgia

“ML/AI engineer who deployed a real-time, edge-based computer-vision pipeline for produce recognition in retail self-checkout to reduce shrink. Demonstrates strong end-to-end production chops: multi-camera data calibration/sync, ranking-based modeling for fine-grained classes, latency-focused optimization, and continuous A/B testing/monitoring with guardrails. Experienced with ML orchestration (Kubeflow Pipelines, Airflow) and CI/CD via GitHub Actions, and collaborates closely with store operations to make interventions usable in the checkout flow.”

PythonC++SQLJavaPyTorchTensorFlow+100
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SY

Sarthak Yadav

Screened

Intern AI/ML Engineer specializing in NLP, computer vision, and reinforcement learning

USA1y exp
Alien AttorneyUniversity at Buffalo

“Built an Arduino-based obstacle-avoiding robot using sonar/laser sensors and improved performance from 0.60 to 0.87 accuracy through sensor-fusion thresholding and iterative tuning. In an internship, optimized a legal-document NLP pipeline by switching to a distilled/quantized transformer and offloading inference to a GPU-backed Flask service, cutting inference time by 40%+ without added infrastructure spend.”

AWSBERTCI/CDComputer VisionData EngineeringDeep Learning+88
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TK

Tadigotla Kumar Reddy

Screened

Mid-level AI/ML Engineer specializing in healthcare imaging and GenAI/LLM systems

New York, USA6y exp
UnitedHealthcareAuburn University at Montgomery

“Built and deployed a production LLM/RAG clinical document understanding and summarization system for healthcare, focused on reducing manual review time while meeting strict accuracy, latency, and compliance needs. Demonstrates strong MLOps/orchestration depth (Airflow, Kubernetes, Azure ML Pipelines) and a rigorous approach to hallucination mitigation through layered, source-grounded safeguards and stakeholder-driven requirements with physicians/compliance teams.”

PythonSQLRJavaJavaScriptBash+157
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ST

Sravya Thotakuri

Screened

Mid-level Full-Stack Developer specializing in Healthcare and FinTech web applications

Remote, USA4y exp
Fairview Health ServicesUniversity of Dayton

“Hands-on engineer focused on productionizing LLM-powered assistants: builds RAG pipelines with guardrails, response schemas, and citation-grounded outputs, then hardens them with explicit NFRs (latency, uptime, security, cost). Experienced diagnosing agentic/LLM workflow issues in real time using observability and stepwise isolation, and supports go-to-market via developer demos, workshops, and pre-sales technical evaluations in microservices/Spring Boot environments.”

ReactAngularSpring BootJavaJavaScriptNode.js+121
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SB

Shashank Bijarapu

Screened

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

Remote, USA4y exp
MerkleUniversity of North Carolina at Charlotte

“AI/ML engineer (Merkle) with hands-on experience deploying RAG-based LLM applications and real-time recommendation engines into production. Strong in cloud/on-prem architectures, GPU autoscaling, caching, and network optimization—delivered measurable latency reductions (40–70%) and improved retrieval relevance by systematically benchmarking chunking/embedding configurations and validating pipelines via CI/CD.”

PythonSQLRJavaBashScikit-learn+103
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PK

Prashanth Kedri

Screened

Mid-level Machine Learning Engineer specializing in MLOps, NLP, and predictive maintenance

AL, USA4y exp
General MotorsAuburn University at Montgomery

“ML engineer with General Motors experience deploying production AI systems, including a BERT-based sentiment classifier for over a million customer support call transcripts (reported ~91% precision) and sub-200ms latency via FastAPI/Docker optimization. Also built predictive maintenance models and automated retraining/monitoring workflows using Airflow and MLflow, collaborating closely with non-technical customer support stakeholders.”

PythonPandasNumPySQLGitGitHub+97
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BC

Bhavishyasai Chigurupati

Screened

Mid-Level Data/ML Engineer specializing in Generative AI and cloud data platforms

Overland Park, KS5y exp
CignaUniversity of Central Missouri

“Built and productionized an LLM-based financial document analysis system using a RAG pipeline, including robust ingestion/chunking/embedding workflows, vector DB retrieval, and an AWS-deployed FastAPI service containerized with Docker. Demonstrates strong applied expertise in improving retrieval quality and latency at scale, plus hands-on experience debugging agentic/LLM workflows with monitoring and trace-based analysis while supporting demos and customer-facing adoption.”

SDLCAgileWaterfallPythonSQLR+179
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YC

Yisong Cheng

Intern Software Engineer specializing in distributed systems and cloud microservices

Remote0y exp
Shanxi Huasheng Hanlin Enterprise Management Co.,LTDNortheastern University
JavaPythonSQLJavaScriptTypeScriptC+80
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SS

Siva Sathwik Kommi

Junior Software Engineer specializing in LLM systems and RAG

Jersey City, NJ2y exp
Stony Brook UniversityStony Brook University
PythonGoJavaTypeScriptJavaScriptSQL+127
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VR

Vikas Reddy Chinnakistanolla

Mid-level Backend Engineer specializing in cloud-native microservices and real-time streaming

Dallas, TX4y exp
State FarmUniversity of Missouri-Kansas City
AgileAPI DesignArgo CDAuthenticationAWSBitbucket+104
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SG

Suhas Gangireddy

Mid-level Data Scientist specializing in LLMs, RAG, and ML systems

Stony Brook, NY4y exp
Stony Brook UniversityStony Brook University
PythonJavaC++RSQLPySpark+68
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HL

Huang Lin

Mid-level Machine Learning Engineer specializing in signal-based indoor localization

Montreal, QC6y exp
EricssonUniversity of Regina
Anomaly DetectionComputer VisionData AnalysisData CleaningData TransformationDeep Learning+36
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MS

Mariusz Skobel

Senior Unity Engineer specializing in VR and multiplayer game development

Katowice, Poland11y exp
EitBizUniversity of Bristol
UnityC#iOSAndroidLatency OptimizationPerformance Optimization+55
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KK

Krishnanand Krishnanand

Junior Machine Learning Engineer specializing in Generative AI

Remote1y exp
Community Dreams FoundationUniversity at Buffalo
AlgorithmsArtificial IntelligenceAWSC++Computer VisionData Analysis+87
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SG

Samheeta Gourammolla

Junior Software Engineer specializing in distributed systems and high-throughput data pipelines

2y exp
VT Space Data SystemsVirginia Tech
JavaPythonTypeScriptJavaScriptGoC+++113
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VV

Veera Venkata Satya Sai Bhargavi Manda

Junior Software Engineer specializing in Data, AI, and Machine Learning

Austin, TX2y exp
Cirrus LogicTexas Tech University
.NETAgileAmazon EC2Amazon S3Apache KafkaAWS+85
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RS

Roshani Shiradwade

Mid-level AI Developer specializing in Generative AI, NLP, and RAG systems

6y exp
HexacorpUniversity of Texas at Arlington
AgileAnomaly DetectionAWS GlueAWS LambdaAzure Blob StorageAzure Functions+89
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