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Golang Dependency Injection

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Streamline your Go applications with dependency injection.

by samber2.9k stars on samber/cc-skills-golang
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Updated Aug 1, 2026
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What Golang Dependency Injection does

The Golang Dependency Injection skill leverages the samber/do library to facilitate type-safe dependency injection in Go applications. This skill is designed for Go architects who are implementing dependency injection patterns, particularly with the samber/do framework. It provides structured methods for service registration, lifecycle management, and error handling, ensuring that developers can maintain clean and efficient codebases.

By using this skill, developers can register services in various ways, including lazy, eager, transient, and value-based instantiation. This flexibility allows for better control over service creation and lifecycle, which is crucial in larger applications where resource management is key. The skill emphasizes best practices such as depending on interfaces rather than concrete types, which enhances testability and maintainability.

The skill also includes practical examples and guidelines for setting up a full application using samber/do. It covers how to organize service registration, manage service dependencies, and handle errors effectively. With this skill, developers can confidently implement dependency injection, leading to more robust and scalable Go applications.

When to use it

Use this skill when adopting the samber/do library for dependency injection in Go projects, especially when refactoring from manual constructor injection.

When not to use it

This skill is not suitable for projects that do not require dependency injection or for those using other DI frameworks without samber/do.

What you can build with it

Refactoring Legacy Code

When transitioning from manual constructor injection to a DI container, this skill provides the necessary tools and patterns to streamline the process.

Building Scalable Applications

For larger Go applications, using samber/do for dependency injection helps manage service lifecycles and dependencies effectively, improving scalability.

Implementing Clean Architecture

This skill assists in adhering to clean architecture principles by promoting the use of interfaces and proper service organization.

How to install Golang Dependency Injection

View source

1. Install with the skills CLI

npx skills add samber/cc-skills-golang/golang-samber-do --agent claude-code

2. Or install it manually

Download the skill folder and drop it into ~/.claude/skills/ for all projects, or .claude/skills/ to scope it to one repo. Restart Claude Code so it picks up the new skill.

Anthropic's agentic coding CLI, and the reference implementation of Agent Skills. Drop a skill folder into ~/.claude/skills and Claude Code loads it automatically whenever a task matches the skill's description. Claude Code docs

Inside SKILL.md

Written by samber

Persona: You are a Go architect setting up dependency injection. You keep the container at the composition root, depend on interfaces not concrete types, and treat provider errors as first-class failures.

Using samber/do for Dependency Injection in Go

Type-safe dependency injection toolkit for Go based on Go 1.18+ generics.

Official Resources:

This skill is not exhaustive. Please refer to library documentation and code examples for more information. For Go package docs, symbols, versions, importers, and known vulnerabilities, → See samber/cc-skills-golang@golang-pkg-go-dev skill (godig) — prefer it over Context7 for Go package facts. To navigate this library's usage in your own code (definitions, call sites, diagnostics), → See samber/cc-skills-golang@golang-gopls skill (gopls). Context7 remains a fallback for docs not indexed on pkg.go.dev.

DO NOT USE v1 OF THIS LIBRARY. INSTALL v2 INSTEAD:

go get -u github.com/samber/do/v2

Core Concepts

The Injector (Container)

import "github.com/samber/do/v2"

injector := do.New()

Service Types

  • Lazy (default): Created when first requested
  • Eager: Created immediately when the container starts
  • Transient: New instance created on every request
  • Value: Pre-created value, no instantiation

Provider Functions

Services MUST be registered via provider functions:

type Provider[T any] func(i Injector) (T, error)

Basic Usage

1. Define and Register Services

Follow "Accept Interfaces, Return Structs":

// Register a service (lazy by default)
do.Provide(injector, func(i do.Injector) (Database, error) {
    return &PostgreSQLDatabase{connString: "postgres://..."}, nil
})

// Register a pre-created value
do.ProvideValue(injector, &Config{Port: 8080})

// Register a transient service (new instance each time)
do.ProvideTransient(injector, func(i do.Injector) (*Logger, error) {
    return &Logger{}, nil
})

// Register an eager service (created immediately at startup)
do.ProvideValue(injector, &Config{Port: 8080})

2. Invoke Services

The container MUST only be accessed at the composition root:

// Invoke with error handling — reserve for call sites outside the DI graph
// (e.g. an HTTP handler that must degrade gracefully instead of crashing)
db, err := do.Invoke[Database](injector)

// MustInvoke panics on error — preferred in providers, recovered by do.Invoke on the parent call
db := do.MustInvoke[Database](injector)

Inside a provider function, always use do.MustInvoke (or MustInvokeAs/MustInvokeNamed/MustInvokeStruct) rather than the error-returning variant. A provider already returns (T, error), so propagating a dependency failure with do.Invoke costs an extra if err != nil { return nil, err } on every call. do.MustInvoke panics instead, but samber/do correctly catches and recovers that panic at the enclosing Invoke call and converts it back into a regular error — this recover happens inside the library itself, not in caller code, so MustInvoke is safe to use inside providers. The failure still surfaces as an error at the composition root, just without the manual boilerplate in every provider.

3. Service Dependencies

func NewUserService(i do.Injector) (UserService, error) {
    db := do.MustInvoke[Database](i)
    cache := do.MustInvoke[Cache](i)
    return &userService{db: db, cache: cache}, nil
}

do.Provide(injector, NewUserService)

4. Implicit Aliasing (Preferred)

Register a concrete type and invoke as an interface without explicit aliasing:

// Register concrete type
do.Provide(injector, func(i do.Injector) (*PostgreSQLDatabase, error) {
    return &PostgreSQLDatabase{}, nil
})

// Invoke directly as interface (implicit aliasing)
db := do.MustInvokeAs[Database](injector)

5. Named Services

Register multiple services of the same type:

do.ProvideNamed(injector, "primary-db", func(i do.Injector) (*Database, error) {
    return &Database{URL: "postgres://primary..."}, nil
})

mainDB := do.MustInvokeNamed[*Database](injector, "primary-db")

Package Organization

Use do.Package() to organize service registration by module:

// infrastructure/package.go
var Package = do.Package(
    do.Lazy(func(i do.Injector) (*postgres.DB, error) {
        cfg := do.MustInvoke[*Config](i)
        return postgres.Connect(cfg.DatabaseURL)
    }),
    do.Lazy(func(i do.Injector) (*redis.Client, error) {
        cfg := do.MustInvoke[*Config](i)
        return redis.NewClient(cfg.RedisURL), nil
    }),
)

// main.go
injector := do.New(infrastructure.Package, service.Package)

Full Application Setup

func main() {
    injector := do.New(
        infrastructure.Package,
        repository.Package,
        service.Package,
        transport.Package,
    )

    server := do.MustInvoke[*http.Server](injector)
    go server.ListenAndServe()

    _ = injector.ShutdownOnSignalsWithContext(context.Background(), os.Interrupt)
}

Best Practices

  1. Depend on interfaces, not concrete types — lets you swap implementations in tests without touching production code
  2. Each service should have one job — services with multiple responsibilities are harder to test and harder to replace
  3. Keep dependency trees shallow — chains beyond 3-4 levels make initialization order fragile and errors harder to trace
  4. Handle errors in provider functions — a silently failing provider creates a broken service that crashes later in unexpected places
  5. Use scopes to organize services by lifecycle — request-scoped services prevent leaks, global services prevent redundant initialization
  6. Use do.MustInvoke* inside provider functions instead of do.Invoke* — samber/do correctly catches and recovers the panic at the outer Invoke call, turning it back into a returned error, so it's safe to use inside providers and you get the same error propagation without the boilerplate

For scopes, lifecycle management, struct injection, and debugging, see Advanced Usage.

For testing patterns (cloning, overrides, mocks), see Testing.

Quick Reference

Registration

FunctionPurpose
do.Provide[T]()Register lazy service (default)
do.ProvideNamed[T]()Register named lazy service
do.ProvideValue[T]()Register pre-created value
do.ProvideNamedValue[T]()Register named value
do.ProvideTransient[T]()Register new instance each time
do.ProvideNamedTransient[T]()Register named transient service
do.Package()Group service registrations

Invocation

FunctionPurpose
do.Invoke[T]()Get service (with error)
do.InvokeNamed[T]()Get named service
do.InvokeAs[T]()Get first service matching interface
do.InvokeStruct[T]()Inject into struct fields using tags
do.MustInvoke[T]()Get service (panic on error)
do.MustInvokeNamed[T]()Get named service (panic on error)
do.MustInvokeAs[T]()Get service by interface (panic on error)
do.MustInvokeStruct[T]()Inject into struct (panic on error)

Cross-References

  • → See samber/cc-skills-golang@golang-dependency-injection skill for DI concepts, comparison, and when to adopt a DI library
  • → See samber/cc-skills-golang@golang-structs-interfaces skill for interface design patterns
  • → See samber/cc-skills-golang@golang-testing skill for general testing patterns

Frequently asked questions about Golang Dependency Injection

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