AI Performance Test Architect

Tampa, FL, US • Posted 6 days ago • Updated 6 days ago
Contract Corp To Corp
Contract Independent
On-site
$50 - $55/hr
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Job Details

Skills

  • Amazon Web Services
  • Analytics
  • Apache JMeter
  • Apache Kafka
  • AppDynamics
  • Artificial Intelligence
  • Automated Testing
  • CHAOS
  • CPU
  • Cloud Computing
  • Computer Science
  • Continuous Delivery
  • Continuous Integration
  • Data Science
  • Database
  • DevOps
  • Dynatrace
  • Financial Services
  • Forecasting
  • GC
  • Generative Artificial Intelligence (AI)
  • GitHub
  • GitLab
  • Good Clinical Practice
  • Google Cloud Platform
  • Grafana
  • Groovy
  • HP LoadRunner
  • HTTP
  • HTTPS
  • Health Insurance
  • Java
  • JavaScript
  • Jenkins
  • Load Balancing
  • Load Testing
  • Machine Learning (ML)
  • Message Queues
  • Microservices
  • Microsoft Azure
  • Modeling
  • NeoLoad
  • Network
  • New Relic
  • NoSQL
  • NumPy
  • Pandas
  • Performance Engineering
  • Performance Testing
  • Productivity
  • Prompt Engineering
  • Python
  • RabbitMQ
  • Reporting
  • Root Cause Analysis
  • SOAP
  • SQL
  • Scripting
  • Software Performance Management
  • Splunk
  • Test Scripts
  • Testing
  • Thread
  • Time Series
  • Trend Analysis
  • WebSocket
  • Workflow
  • scikit-learn

Summary

Job Title: AI Performance Test Architect
Location: Tampa, FL (Onsite)
Experience: 4-6 years

Mandatory Skills: AI and Automation, AI Performance Test

Technical Skills:
* Load Testing Tools: Deep expertise in tools such as JMeter, LoadRunner, Gatling, k6, NeoLoad, or BlazeMeter.
* APM & Observability: Strong hands-on experience with Datadog, Azure Application Insights, and exposure to Dynatrace, New Relic, AppDynamics, Splunk, Grafana, or Prometheus.
* Bottleneck Analysis: Expert-level skills in performance bottleneck identification across CPU, memory, threads, database queries, network latency, and microservices.
* CI/CD Integration: Experience integrating performance testing into pipelines using Jenkins, Azure DevOps, GitHub Actions, or GitLab CI.
* Cloud Platforms: Working knowledge of AWS, Azure, or Google Cloud Platform including auto-scaling, load balancing, and cloud-native performance considerations.
* Scripting & Programming: Proficiency in Java, Python, Groovy, or JavaScript for scripting and automation.
* Protocols & Architectures: Strong understanding of HTTP/HTTPS, REST/SOAP APIs, WebSockets, microservices, message queues (Kafka, RabbitMQ), and database performance (SQL/NoSQL).

Required AI/ML & GenAI Skills:
* AI-Powered Observability: Hands-on experience with AIOps platforms and AI-driven APM features such as Datadog Watchdog/Bits AI, Dynatrace Davis AI, New Relic AI, or Azure AI Anomaly Detector.
* Predictive Performance Analytics: Experience using ML models for capacity forecasting, performance trend analysis, and proactive bottleneck prediction.
* Anomaly Detection & Root Cause Analysis (RCA): Ability to design or leverage AI/ML models for automated anomaly detection, intelligent alerting, noise reduction, and AI-assisted RCA.
* Generative AI for Engineering Productivity: Practical experience using GenAI tools (ChatGPT, Copilot, Claude, Gemini) for automated script generation, test data creation, log/trace summarization, and intelligent reporting.
* Data & ML Foundations: Working knowledge of Python data libraries (Pandas, NumPy, Scikit-learn), time-series analysis, and basic ML concepts applied to performance datasets.
* Intelligent Test Automation: Familiarity with AI-driven approaches for self-healing test scripts, smart workload modeling, and risk-based performance test selection.
* Prompt Engineering: Ability to craft effective prompts to integrate LLMs into performance engineering workflows for analysis, recommendations, and automation.

Preferred Qualifications:
* Bachelor's or Master's degree in Computer Science, Engineering, Data Science, or related field.
* Industry certifications in performance engineering, cloud platforms (AWS/Azure), APM tools (Datadog, Dynatrace), or AI/ML certifications (Azure AI Engineer, AWS ML Specialty, Google ML Engineer) is a plus .
* Experience in regulated industries (Financial Services, Healthcare, Insurance) is a plus.
* Knowledge of chaos engineering, resilience testing, and AI-driven SRE practices.
* Experience building or integrating custom ML models or LLM-based agents to support performance engineering workflows.

Employers have access to artificial intelligence language tools (“AI”) that help generate and enhance job descriptions and AI may have been used to create this description. The position description has been reviewed for accuracy and Dice believes it to correctly reflect the job opportunity.
  • Dice Id: 91131463
  • Position Id: 9091561
  • Posted 6 days ago

Company Info

About Saim Technologies

Saim Technologies provides a variety of services related to Information Technology and out sourcing and has been recognized as a one of the emerging leader in software solutions. We provide custom software development, Staffing, Training and engineering services. We offer Enterprise level web based applications, web services, technical resources, Enterprise level database, software hosting, technical support services, routine programming, and more.

Our IT services focus on providing you with increased business performance by leveraging our technological expertise, business knowledge, process quality, and people. Our dedicated Centers of Excellence and practices around each of our service offerings enable us to continuously improve processes, retain project learning, and expand knowledge repositories to deliver consistent value.

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Naveen Reddy

Recruiter @ Saim Technologies
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