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End-to-End Capacity Planning for Modern Applications (Cloud, Microservices & DevOps)-Day 3

End-to-End Capacity Planning for Modern Applications (Cloud, Microservices & DevOps) – Live Training   This Enterprise Capacity Planning & Performance Engineering Masterclass provides a practical, end-to-end approach to designing scalable, high-performance systems. The course covers workload modeling, demand forecasting, application, …

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Event Information

  • Price $ 9.900,00 per participant
  • Start Time 9:00 pm March 6, 2026
  • Finish Time 10:00 pm March 6, 2026
  • Capacity Limited to 100 people

End-to-End Capacity Planning for Modern Applications (Cloud, Microservices & DevOps) – Live Training

 

This Enterprise Capacity Planning & Performance Engineering Masterclass provides a practical, end-to-end approach to designing scalable, high-performance systems. The course covers workload modeling, demand forecasting, application, database, infrastructure, and cloud capacity planning using real-world enterprise scenarios. Learners will understand how to prevent outages, optimize resource utilization, and plan for peak traffic events. You will gain hands-on knowledge of performance testing, observability, SRE practices, and cloud auto-scaling strategies. This program is ideal for building scalable, resilient, and cost-efficient IT systems in modern DevOps and cloud-native environments.

 

About the Instructor:

Sushant is a seasoned performance engineering and capacity planning professional with over 12 years of industry experience working on enterprise-scale applications. His expertise includes capacity forecasting, workload modeling, infrastructure sizing, and performance risk analysis across large production systems. He has supported business-critical platforms by aligning technical capacity strategies with growth and cost-optimization goals. His real-world exposure enables him to approach capacity planning as both a technical and business-driven discipline.

With 4+ years of teaching experience, Sushant has successfully trained over 300 professionals through classroom and corporate training programs. Teaching is his passion, and he is known for his structured explanations, real-time industry examples, and learner-centric approach. He focuses on building strong fundamentals while enabling participants to apply concepts confidently in real projects. At OOR Institute, he is committed to developing industry-ready capacity planning professionals.

 

Live Sessions  Price:

For LIVE sessions – Offer price after discount is 229 USD 179 USD 119 USD Or  1900 INR 15000 INR 9900 Rupees.

Enroll For Free Demo

OR

WhatsApp

Live Sessions  Price:

For LIVE sessions – Offer price after discount is 229 USD 179 USD 119 USD Or  1900 INR 15000 INR 9900 Rupees.

Enroll For Free Demo

OR

WhatsApp

 

Free Day 3 Session:

6th March @ 9:00 PM – 10:00 PM (IST) (Indian Timings)

6th March @ 10:30 AM – 11:30 AM (EST) (U.S Timings)

6th March @ 3:30 PM – 4:30 PM (BST) (UK Timings)

 

Class Schedule:

For Participants in India: Monday to Friday @ 9:00 PM – 10:00 PM (IST)

For Participants in the US: Monday to Friday @ 10:30 AM – 11:30 AM (EST)

For Participants in the UK: Monday to Friday @ 3:30 PM – 4:30 PM (BST)

 

What student’s have to say about Sushant:

This course is fantastic for beginners! I had no prior experience with Python or Pandas, but now I feel confident in my ability to clean, transform, and analyze data. – Kanthi

I highly recommend this course to anyone looking to upskill in data analysis. The content is well-structured, and the pacing is just right. I particularly enjoyed the sections on exploratory data analysis and data visualization with Pandas. – Shyam

This course exceeded my expectations! The instructors are knowledgeable and engaging, and the course material is presented in a clear and concise manner. I appreciated the emphasis on hands-on learning, which allowed me to immediately apply what I learned to real-world datasets. – Mounika

 

Who can enroll for this course?

  • Software Developers working on cloud or microservices applications
  • DevOps Engineers managing CI/CD pipelines and production deployments
  • Site Reliability Engineers (SREs) handling system scalability and uptime
  • Performance Test Engineers working on load and stress testing
  • Cloud Engineers managing AWS, Azure, or GCP environments
  • System Administrators handling infrastructure and server capacity
  • Technical Leads and Architects designing scalable systems
  • IT Operations Professionals responsible for resource optimization
  • QA Engineers interested in performance and scalability testing
  • Freshers or IT professionals who want to build a career in Cloud & DevOps capacity planning

 

What will I Learn by end of this course?

  • Understand capacity planning fundamentals and why it is critical for scalable systems
  • Perform workload analysis and demand forecasting using real business data
  • Design application-level capacity plans for monoliths and microservices
  • Plan database capacity including growth, performance, and high availability
  • Estimate and optimize infrastructure and network capacity
  • Implement cloud capacity planning and auto-scaling strategies
  • Use performance testing to validate capacity limits and breakpoints
  • Identify bottlenecks across application, database, and infrastructure layers
  • Apply SRE and observability metrics for continuous capacity planning
  • Optimize cost, performance, and scalability in enterprise environments

 

Salient Features:

  • 30 Hours of Live Training
  • Every session gets recorded and lifetime access to these videos will be given.
  • Course Completion Certificate

 

Course syllabus:

MODULE 1: Foundations of Capacity Planning (Sessions 1–5)

Session 1: Capacity Planning – Why It Makes or Breaks Systems

  • What capacity planning really means (beyond infra sizing)
  • Real outage case studies (Banking, eCommerce, Payments)
  • Capacity planning vs performance testing
  • Where most organizations fail

Session 2: Capacity Planning Lifecycle

  • Demand → Modeling → Validation → Monitoring → Optimization
  • Short-term vs long-term planning
  • Reactive vs proactive planning

Session 3: Core Terminologies & Metrics

  • Throughput, latency, concurrency
  • Peak vs average load
  • Headroom, saturation, utilization
  • Little’s Law (practical explanation)

Session 4: Types of Capacity Planning

  • Business capacity planning
  • Service capacity planning
  • Resource capacity planning
  • Component-level planning

Session 5: Capacity Planning in SDLC

  • Agile, DevOps & CI/CD alignment
  • Shift-left capacity planning
  • Role of PE, SRE, Architects

MODULE 2: Workload & Demand Analysis (Sessions 6–9)

Session 6: Understanding Business Demand

  • Business events driving load
  • Seasonal vs event-based traffic
  • BFSI & FinTech traffic patterns

Session 7: User Behavior & Workload Modeling

  • Think time, arrival rates
  • User mix modeling
  • Transaction criticality mapping

Session 8: Forecasting Techniques

  • Linear growth
  • Seasonal growth
  • Event-based surge modeling
  • Historical data analysis

Session 9: Creating Demand Forecast Models (Hands-on)

  • Excel-based forecasting
  • CAGR & growth assumptions
  • Risk buffers

MODULE 3: Application-Level Capacity Planning (Sessions 10–14)

Session 10: Application Architecture Deep Dive

  • Monolith vs Microservices
  • Synchronous vs asynchronous systems
  • Stateless vs stateful services

Session 11: App Server Capacity Planning

  • JVM sizing fundamentals
  • Thread pools, connection pools
  • Memory & GC impact

Session 12: API & Microservices Capacity Planning

  • Per-service throughput modeling
  • Downstream dependency impact
  • Fan-out & cascading failures

Session 13: Caching & Performance Patterns

  • Cache hit ratio impact
  • CDN, Redis, in-memory caches
  • Capacity savings through caching

Session 14: App-Level Bottleneck Identification

  • CPU vs Memory vs Threads
  • Vertical vs horizontal scaling decisions

MODULE 4: Database Capacity Planning (Sessions 15–19)

Session 15: Database Workload Characteristics

  • Read vs write intensive systems
  • OLTP vs OLAP
  • Transaction complexity

Session 16: DB Sizing & Growth Planning

  • Storage growth forecasting
  • Index growth
  • Archival strategies

Session 17: DB Performance Metrics

  • TPS, QPS
  • Locking & contention
  • Connection limits

Session 18: HA, DR & Replication Impact

  • Active-active vs active-passive
  • Replication lag
  • Read replicas planning

Session 19: DB Bottleneck Simulation

  • What breaks first and why
  • Capacity buffers for peak events

MODULE 5: Infrastructure & Network Capacity Planning (Sessions 20–23)

Session 20: CPU, Memory & Disk Planning

  • Utilization thresholds
  • IO wait & disk latency
  • Overcommitment risks

Session 21: Network Capacity Planning

  • Bandwidth estimation
  • Latency & packet loss
  • East-west vs north-south traffic

Session 22: Load Balancers & Gateways

  • L7 vs L4 capacity
  • SSL termination impact
  • Failover scenarios

Session 23: Capacity Planning for HA Systems

  • N+1, N+2 models
  • Failure scenarios
  • Degraded mode planning

MODULE 6: Cloud Capacity Planning (Sessions 24–28)

Session 24: Cloud Capacity Planning Fundamentals

  • Cloud is not infinite
  • Quotas, limits, throttling

Session 25: Auto-scaling Strategies

  • Horizontal vs vertical scaling
  • Scaling policies
  • Cold start impact

Session 26: Cost vs Performance Trade-offs

  • Right sizing
  • Over-provisioning vs under-provisioning
  • Reserved vs on-demand

Session 27: Container & Kubernetes Capacity Planning

  • Pod resource requests & limits
  • Node sizing
  • Cluster autoscaler logic

Session 28: Cloud Failure Case Studies

  • When auto-scaling fails
  • Misconfigured limits
  • Cost explosions

MODULE 7: Validation, Monitoring & Optimization (Sessions 29–32)

Session 29: Capacity Validation via Performance Testing

  • How to design capacity-focused tests
  • Breaking points vs safe limits

Session 30: Observability for Capacity Planning

  • Golden signals
  • Trend analysis
  • Leading vs lagging indicators

Session 31: Continuous Capacity Planning

  • Feedback loops
  • Monitoring-driven forecasting
  • Capacity debt concept

Session 32: Optimization Techniques

  • App tuning
  • DB tuning
  • Infra & cloud optimization

 

How can I enroll for this course?

 

Enroll For Free Demo

OR

For any other details, Call me or Whatsapp me on +91-9133190573

 

Live Sessions Price:

For LIVE sessions – Offer price after discount is 229 USD 179 USD 119 USD Or  1900 INR 15000 INR 9900 Rupees.

 

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