
Distributed Systems Course
Master the core principles and engineering practices behind distributed systems, from consensus algorithms to global replication strategies. This course gives you the technical depth to design, build, and operate systems that scale reliably under real-world conditions. Whether you are targeting senior engineering roles or architecting production infrastructure, this is the knowledge that separates strong engineers from exceptional ones.
What you will learn:
You will gain a thorough understanding of how distributed systems work, covering system models, networking primitives, time and causality, replication, and consensus protocols. You will learn how to design fault-tolerant architectures using proven resilience patterns and how to operate distributed databases with well-defined consistency guarantees. The course also covers scalability strategies, observability practices, and deployment techniques used in production environments. You will explore microservices patterns, stream processing pipelines, security across service boundaries, and multi-region architecture design. By the end, you will be equipped to make confident, well-reasoned architectural decisions on complex distributed systems.
How you study in practice Distributed Systems Course
How you practise Distributed Systems Course
For businesses looking to train their team
With Dedika for businesses, the course includes exercises and examples tailored to your own business and the way your company needs.
Course content
8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Distributed Systems
Foundations of Distributed Systems
Lesson 1 • Theoretical Limits: CAP and Beyond
Presents CAP theorem, PACELC, and impossibility results. Students use these frameworks to justify architectural choices.
Lesson 2 • System Models and Assumptions
Introduces synchronous, asynchronous, and partially synchronous models. Students apply the correct model when reasoning about algorithm correctness.
Lesson 3 • What Is a Distributed System
Defines distributed systems by their structural and behavioural properties. Establishes vocabulary used throughout the course.
Lesson 4 • Core Challenges and Failure Modes
Surveys partial failures, network unreliability, and timing issues. Frames every subsequent design decision around these constraints.
Lesson 5 • Measuring Distributed System Properties
Defines latency, throughput, availability, and durability metrics. Connects abstract properties to measurable operational targets.
Chapter 2HideHide detailsSee detailsNetworking and Communication Primitives
Networking and Communication Primitives
Lesson 1 • Service Discovery and Load Balancing
Explains how nodes find each other and distribute load. Students configure discovery and balancing strategies for dynamic clusters.
Lesson 2 • Message Passing and Queuing
Covers point-to-point and publish-subscribe messaging models. Connects messaging patterns to decoupling and resilience goals.
Lesson 3 • Network Stack Essentials
Reviews TCP, UDP, and the layers relevant to distributed systems. Provides the transport-layer foundation for higher-level protocols.
Lesson 4 • Remote Procedure Calls
Explains RPC semantics, stubs, and serialisation. Students implement and debug RPC-based services with correct failure handling.
Lesson 5 • Protocol Design Principles
Teaches idempotency, versioning, and backward compatibility in protocols. Students design protocols that tolerate partial upgrades and retries.
Chapter 3HideHide detailsSee detailsTime, Ordering, and Causality
Time, Ordering, and Causality
Lesson 1 • Hybrid Logical Clocks
Combines physical and logical time to achieve causality with bounded skew. Students select the appropriate clock scheme for latency-sensitive applications.
Lesson 2 • Physical Clocks and Their Limits
Examines clock drift, NTP, and GPS-based synchronisation. Motivates logical clocks by showing physical clocks cannot provide global order.
Lesson 3 • Consistent Snapshots
Presents the Chandy-Lamport algorithm for capturing global state. Students apply snapshots to debugging, checkpointing, and deadlock detection.
Lesson 4 • Logical Clocks
Introduces Lamport timestamps and their happens-before relation. Students use logical clocks to order events without physical time.
Lesson 5 • Vector Clocks and Version Vectors
Extends logical clocks to capture causal dependencies per process. Students detect conflicts and reconstruct causal histories using vector clocks.
Chapter 4HideHide detailsSee detailsReplication and Consistency Models
Replication and Consistency Models
Lesson 1 • Conflict Detection and Resolution
Addresses divergent replicas and strategies for merging concurrent writes. Students implement last-write-wins, CRDTs, and application-level resolution.
Lesson 2 • Consistency Models Spectrum
Defines linearisability, sequential consistency, causal consistency, and eventual consistency. Students map application needs to the appropriate model.
Lesson 3 • Quorum-Based Replication
Explains read and write quorums and their consistency implications. Students calculate quorum sizes for desired durability and availability.
Lesson 4 • Replication Goals and Strategies
Surveys why replication is used and the primary approaches. Frames the consistency-performance trade-off central to this chapter.
Lesson 5 • Replication Lag and Read Anomalies
Identifies stale reads, monotonic read violations, and read-your-writes failures. Students apply session guarantees to eliminate user-visible anomalies.
Chapter 5HideHide detailsSee detailsConsensus and Coordination Protocols
Consensus and Coordination Protocols
Lesson 1 • Distributed Locking and Coordination
Applies consensus to implement distributed locks, barriers, and leader election services. Students avoid common pitfalls like lock expiry races.
Lesson 2 • Byzantine Fault-Tolerant Consensus
Extends consensus to tolerate malicious or arbitrary failures. Students evaluate when BFT protocols are necessary and their cost.
Lesson 3 • Paxos Algorithm
Walks through single-decree and multi-Paxos phases in detail. Students trace message flows and identify failure recovery paths.
Lesson 4 • Raft Consensus Algorithm
Presents Raft as an understandable alternative to Paxos. Students implement log replication, leader election, and membership changes.
Lesson 5 • The Consensus Problem
Defines consensus formally and explains why it is hard under failures. Connects consensus to replication, locking, and atomic broadcast.
Chapter 6HideHide detailsSee detailsDistributed Storage and Databases
Distributed Storage and Databases
Lesson 1 • Partitioning and Sharding
Covers range, hash, and directory-based partitioning strategies. Students design partition schemes that balance load and minimise cross-shard queries.
Lesson 2 • Storage Engine Internals
Examines LSM trees, B-trees, and write-ahead logs. Students predict performance characteristics and tune storage engines accordingly.
Lesson 3 • Distributed Transactions
Explains two-phase commit, three-phase commit, and their failure modes. Students implement atomic cross-partition operations with correct rollback.
Lesson 4 • NoSQL Storage Models
Surveys key-value, document, column-family, and graph storage models. Students match data models to query patterns and consistency requirements.
Lesson 5 • Isolation Levels and Anomalies
Defines read phenomena and maps them to isolation levels. Students configure isolation to prevent specific anomalies without sacrificing performance.
Chapter 7HideHide detailsSee detailsFault Tolerance and Resilience Patterns
Fault Tolerance and Resilience Patterns
Lesson 1 • Bulkhead and Isolation Patterns
Isolates failures using thread pools, process boundaries, and resource quotas. Students prevent cascading failures by containing blast radius.
Lesson 2 • Chaos Engineering and Resilience Testing
Introduces controlled fault injection to validate resilience assumptions. Students design experiments that expose hidden failure modes before production.
Lesson 3 • Failure Detection
Covers heartbeats, phi-accrual detectors, and gossip-based detection. Students tune detectors to balance false positives against detection latency.
Lesson 4 • Redundancy and Replication Strategies
Applies active-active, active-passive, and N+1 redundancy models. Students calculate required redundancy for target availability levels.
Lesson 5 • Circuit Breakers and Timeouts
Implements circuit breakers to stop calling failing dependencies. Students configure timeout budgets and half-open state transitions.
Chapter 8HideHide detailsSee detailsScalability, Performance, and Operations
Scalability, Performance, and Operations
Lesson 1 • Incident Response and Post-mortems
Establishes on-call practices, runbooks, and blameless post-mortems. Students produce actionable post-mortems that prevent recurrence.
Lesson 2 • Capacity Planning and Load Testing
Forecasts resource needs and validates headroom through load tests. Students build capacity models and interpret load test results.
Lesson 3 • Horizontal and Vertical Scaling
Contrasts scaling strategies and identifies bottlenecks that limit each. Students design stateless services and data tiers that scale independently.
Lesson 4 • Deployment and Rolling Updates
Covers blue-green, canary, and rolling deployment strategies. Students execute zero-downtime deployments and roll back safely on failure.
Lesson 5 • Observability: Metrics, Logs, and Traces
Builds the three pillars of observability into distributed services. Students instrument code and correlate signals to diagnose production issues.
Your valid completion certificate
This course is for you:
Mid-level software engineers: ready to move beyond single-server thinking.
Backend developers: hitting the limits of monolithic application architectures.
Site reliability engineers: wanting deeper theory behind the systems they operate.
Computer science graduates: bridging the gap between coursework and production reality.
Platform engineers: designing infrastructure that must survive real-world failure conditions.
Tech leads: needing rigorous vocabulary to guide their team's architectural decisions.
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