Operating Systems & Systems Programming Topics
Covers operating system fundamentals and systems programming topics, including process management, memory management, file system interfaces, inter-process communication, low-level kernel interactions, and system call interfaces (e.g., fork, exec, opendir, stat) across Unix/Linux and other OS environments.
File Systems & Storage Internals
How file systems organize data on storage: inodes, directories, file descriptors, hard vs. symbolic links, and metadata. Covers on-disk structures, journaling and consistency, the buffer/page cache, mounting and the virtual file system layer, and how block devices and storage stacks sit beneath the file system.
Interprocess Communication (IPC)
Mechanisms that let separate processes exchange data and coordinate: pipes and named pipes, message queues, shared memory, signals, and Unix domain sockets. Covers the trade-offs between IPC methods (throughput, latency, complexity, ordering) and when each is appropriate for a given systems design.
Linux System Administration & Networking
Operating and troubleshooting Linux hosts: users and groups, packages, cron, logging, and the /proc and /sys interfaces, together with host-level networking such as interfaces, routing, DNS resolution, ports, and firewall rules. Covers diagnosing connectivity and configuration issues with standard tooling on a running Linux system.
Linux Command Line & Shell
Working effectively at the Linux/Unix shell: core commands, file and text manipulation, pipes and redirection, process control, permissions and ownership, and shell scripting fundamentals. Covers navigating the filesystem, chaining tools, and the everyday command-line workflow expected of anyone operating Linux systems.
Windows Server Internals & Administration
Administering and troubleshooting Windows Server environments: the Windows process and service model, the registry, event logs, Active Directory basics, and performance/diagnostic tooling. Covers how Windows differs from Unix in process, security, and service management, and how to diagnose common server-side failures.
CPU Scheduling & Context Switching
How the operating system decides which runnable task gets the CPU and switches between them: preemptive vs. cooperative scheduling, algorithms such as round-robin, priority, and multilevel feedback queues, time slices, and the mechanics and cost of a context switch. Covers scheduling goals like throughput, latency, fairness, and starvation avoidance.
Service & Init System Management
Managing long-running services and the system init layer: systemd units, targets, dependencies, and journald, plus starting, stopping, enabling, and troubleshooting daemons. Covers service lifecycle, restart policies, and how the init system supervises processes on a modern Linux host.
State Machines & Protocol Implementation
Modeling behavior and communication with explicit state: finite state machines, event-driven transitions, and implementing wire or hardware protocols with framing, timeouts, and error handling. Covers structuring long-lived logic as a state machine to keep firmware and systems code correct and testable.
Systems Performance Analysis & Tuning
Finding and fixing performance problems at the OS and low level: profiling CPU, memory, I/O, and lock contention, reading utilization and saturation signals, and using tools like perf, strace, and tracepoints. Covers cache behavior, false sharing, syscall overhead, and the methodology of isolating a bottleneck before optimizing.